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add more references, done much of the introduction.

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# Content
1 %% This BibTeX bibliography file was created using BibDesk.
2 %% http://bibdesk.sourceforge.net/
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5 %% Created for Shenyu Kuang at 2011-07-08 17:52:04 -0400
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8 %% Saved with string encoding Unicode (UTF-8)
9
10
11
12 @article{doi:10.1080/00268970210130948,
13 Abstract = { A review is presented of this group's recent molecular simulation studies of self-assembled monolayers (SAMs) of alkanethiols on Au(111) surfaces. SAMs are very useful for the systematic alteration of the chemical and structural properties of a surface by varying chain length, tail group and composition. The scientific and technological importance of SAMs cannot be overestimated. The present work has been centred on studies of atomic scale surface properties of SAMs. First, configurational-bias Monte Carlo simulations were performed in both semigrand canonical and canonical ensembles to investigate the preferential adsorption and phase behaviour of mixed SAMs on Au(111) surfaces. Second, a novel hybrid molecular simulation technique was developed to simulate atomic force microscopy (AFM) over experimental timescales. The method combines a dynamic element model for the tip-cantilever system in AFM and a molecular dynamics relaxation approach for the sample. The hybrid simulation technique was applied to investigate atomic scale friction and adhesion properties of SAMs as a function of chain length. Third, dual-control-volume grand canonical molecular dynamics (DCV-GCMD) simulations were performed of transport diffusion of liquid water and methanol through a slit pore with both inner walls consisting of Au(111) surfaces covered by SAMs under a chemical potential gradient. Surface hydrophobicity was adjusted by varying the terminal group of CH3 (hydrophobic) or OH (hydrophilic) of the SAMs. Finally, ab initio quantum chemical calculations were performed on both clusters and periodic systems of methylthiols on Au(111) surfaces. Based on the ab initio results, an accurate force field capable of predicting c(4×2) superlattice structures over a wide range of temepratures for alkanethiols on Au(111) was developed. The extension of current work is discussed briefly. },
14 Author = {JIANG, SHAOYI},
15 Date-Added = {2011-07-08 17:51:59 -0400},
16 Date-Modified = {2011-07-08 17:51:59 -0400},
17 Doi = {10.1080/00268970210130948},
18 Eprint = {http://www.tandfonline.com/doi/pdf/10.1080/00268970210130948},
19 Journal = {Molecular Physics},
20 Number = {14},
21 Pages = {2261-2275},
22 Title = {Molecular simulation studies of self-assembled monolayers of alkanethiols on Au(111)},
23 Url = {http://www.tandfonline.com/doi/abs/10.1080/00268970210130948},
24 Volume = {100},
25 Year = {2002},
26 Bdsk-Url-1 = {http://www.tandfonline.com/doi/abs/10.1080/00268970210130948},
27 Bdsk-Url-2 = {http://dx.doi.org/10.1080/00268970210130948}}
28
29 @article{doi:10.1021/la904855s,
30 Author = {Alper, Joshua and Hamad-Schifferli, Kimberly},
31 Date-Added = {2011-07-08 17:18:53 -0400},
32 Date-Modified = {2011-07-08 17:18:53 -0400},
33 Doi = {10.1021/la904855s},
34 Eprint = {http://pubs.acs.org/doi/pdf/10.1021/la904855s},
35 Journal = {Langmuir},
36 Note = {PMID: 20166728},
37 Number = {6},
38 Pages = {3786-3789},
39 Title = {Effect of Ligands on Thermal Dissipation from Gold Nanorods},
40 Url = {http://pubs.acs.org/doi/abs/10.1021/la904855s},
41 Volume = {26},
42 Year = {2010},
43 Bdsk-Url-1 = {http://pubs.acs.org/doi/abs/10.1021/la904855s},
44 Bdsk-Url-2 = {http://dx.doi.org/10.1021/la904855s}}
45
46 @article{doi:10.1021/jp8051888,
47 Abstract = { Thermal transport between CTAB passivated gold nanorods and solvent is studied by an optical pump−probe technique. Increasing the free CTAB concentration from 1 mM to 10 mM causes a ∼3× increase in the CTAB layer's effective thermal interface conductance and a corresponding shift in the longitudinal surface plasmon resonance. The transition occurs near the CTAB critical micelle concentration, revealing the importance of the role of free ligand on thermal transport. },
48 Author = {Schmidt, Aaron J. and Alper, Joshua D. and Chiesa, Matteo and Chen, Gang and Das, Sarit K. and Hamad-Schifferli, Kimberly},
49 Date-Added = {2011-07-08 17:04:34 -0400},
50 Date-Modified = {2011-07-08 17:04:34 -0400},
51 Doi = {10.1021/jp8051888},
52 Eprint = {http://pubs.acs.org/doi/pdf/10.1021/jp8051888},
53 Journal = {The Journal of Physical Chemistry C},
54 Number = {35},
55 Pages = {13320-13323},
56 Title = {Probing the Gold Nanorod−Ligand−Solvent Interface by Plasmonic Absorption and Thermal Decay},
57 Url = {http://pubs.acs.org/doi/abs/10.1021/jp8051888},
58 Volume = {112},
59 Year = {2008},
60 Bdsk-Url-1 = {http://pubs.acs.org/doi/abs/10.1021/jp8051888},
61 Bdsk-Url-2 = {http://dx.doi.org/10.1021/jp8051888}}
62
63 @article{PhysRevB.80.195406,
64 Author = {Juv\'e, Vincent and Scardamaglia, Mattia and Maioli, Paolo and Crut, Aur\'elien and Merabia, Samy and Joly, Laurent and Del Fatti, Natalia and Vall\'ee, Fabrice},
65 Date-Added = {2011-07-08 16:36:39 -0400},
66 Date-Modified = {2011-07-08 16:36:39 -0400},
67 Doi = {10.1103/PhysRevB.80.195406},
68 Journal = {Phys. Rev. B},
69 Month = {Nov},
70 Number = {19},
71 Numpages = {6},
72 Pages = {195406},
73 Publisher = {American Physical Society},
74 Title = {Cooling dynamics and thermal interface resistance of glass-embedded metal nanoparticles},
75 Volume = {80},
76 Year = {2009},
77 Bdsk-Url-1 = {http://dx.doi.org/10.1103/PhysRevB.80.195406}}
78
79 @article{Wang10082007,
80 Abstract = {At the level of individual molecules, familiar concepts of heat transport no longer apply. When large amounts of heat are transported through a molecule, a crucial process in molecular electronic devices, energy is carried by discrete molecular vibrational excitations. We studied heat transport through self-assembled monolayers of long-chain hydrocarbon molecules anchored to a gold substrate by ultrafast heating of the gold with a femtosecond laser pulse. When the heat reached the methyl groups at the chain ends, a nonlinear coherent vibrational spectroscopy technique detected the resulting thermally induced disorder. The flow of heat into the chains was limited by the interface conductance. The leading edge of the heat burst traveled ballistically along the chains at a velocity of 1 kilometer per second. The molecular conductance per chain was 50 picowatts per kelvin.},
81 Author = {Wang, Zhaohui and Carter, Jeffrey A. and Lagutchev, Alexei and Koh, Yee Kan and Seong, Nak-Hyun and Cahill, David G. and Dlott, Dana D.},
82 Date-Added = {2011-07-08 16:20:05 -0400},
83 Date-Modified = {2011-07-08 16:20:05 -0400},
84 Doi = {10.1126/science.1145220},
85 Eprint = {http://www.sciencemag.org/content/317/5839/787.full.pdf},
86 Journal = {Science},
87 Number = {5839},
88 Pages = {787-790},
89 Title = {Ultrafast Flash Thermal Conductance of Molecular Chains},
90 Url = {http://www.sciencemag.org/content/317/5839/787.abstract},
91 Volume = {317},
92 Year = {2007},
93 Bdsk-Url-1 = {http://www.sciencemag.org/content/317/5839/787.abstract},
94 Bdsk-Url-2 = {http://dx.doi.org/10.1126/science.1145220}}
95
96 @article{doi:10.1021/jp200672e,
97 Abstract = { In a previous article (Phys. Chem. Chem. Phys.2010, 12, 4435), nonequilibrium molecular dynamics (MD) simulations of heat transfer from a hot Au{111} substrate to an alkylthiolate self-assembled monolayer (H-SAM) were presented. The simulations were performed for an H-SAM chain length of eight carbon atoms, and a qualitative agreement with the experiments of Wang et al. (Science2007, 317, 787) was found. Here, simulation results are presented for heat transfer to H-SAM surfaces with carbon chain lengths of 10--20 carbon atoms. Relaxation times for heat transfer are extracted, compared with experiment, and a qualitative agreement is obtained. The same relaxation time is found from either the temperature of the H-SAM or the orientational disorder of the H-SAM versus time. For a simulation model with the Au substrate thermally equilibrated, the relaxation times determined from the simulations are approximately a factor of 4 larger than the experimental values. },
98 Author = {Manikandan, Paranjothy and Carter, Jeffrey A. and Dlott, Dana D. and Hase, William L.},
99 Date-Added = {2011-07-08 13:36:39 -0400},
100 Date-Modified = {2011-07-08 13:36:39 -0400},
101 Doi = {10.1021/jp200672e},
102 Eprint = {http://pubs.acs.org/doi/pdf/10.1021/jp200672e},
103 Journal = {The Journal of Physical Chemistry C},
104 Number = {19},
105 Pages = {9622-9628},
106 Title = {Effect of Carbon Chain Length on the Dynamics of Heat Transfer at a Gold/Hydrocarbon Interface: Comparison of Simulation with Experiment},
107 Url = {http://pubs.acs.org/doi/abs/10.1021/jp200672e},
108 Volume = {115},
109 Year = {2011},
110 Bdsk-Url-1 = {http://pubs.acs.org/doi/abs/10.1021/jp200672e},
111 Bdsk-Url-2 = {http://dx.doi.org/10.1021/jp200672e}}
112
113 @article{doi:10.1021/ja00051a040,
114 Author = {Rappe, A. K. and Casewit, C. J. and Colwell, K. S. and Goddard, W. A. and Skiff, W. M.},
115 Date-Added = {2011-06-29 14:04:33 -0400},
116 Date-Modified = {2011-06-29 14:04:33 -0400},
117 Doi = {10.1021/ja00051a040},
118 Eprint = {http://pubs.acs.org/doi/pdf/10.1021/ja00051a040},
119 Journal = {Journal of the American Chemical Society},
120 Number = {25},
121 Pages = {10024-10035},
122 Title = {UFF, a full periodic table force field for molecular mechanics and molecular dynamics simulations},
123 Url = {http://pubs.acs.org/doi/abs/10.1021/ja00051a040},
124 Volume = {114},
125 Year = {1992},
126 Bdsk-Url-1 = {http://pubs.acs.org/doi/abs/10.1021/ja00051a040},
127 Bdsk-Url-2 = {http://dx.doi.org/10.1021/ja00051a040}}
128
129 @article{doi:10.1021/jp034405s,
130 Abstract = { We use the universal force field (UFF) developed by Rapp{\'e} et al. (Rapp{\'e}, A. K.; Casewit, C. J.; Colwell, K. S.; Goddard, W. A.; Skiff, W. M. J. Am. Chem. Soc. 1992, 114, 10024) and the specific classical potentials developed from ab initio calculations for Au−benzenedithiol (BDT) molecule interaction to perform molecular dynamics (MD) simulations of a BDT monolayer on an extended Au(111) surface. The simulation system consists of 100 BDT molecules and three rigid Au layers in a simulation box that is rhombic in the plane of the Au surface. A multiple time scale algorithm, the double-reversible reference system propagator algorithm (double RESPA) based on the Nos{\'e}−Hoover dynamics scheme, and the Ewald summation with a boundary correction term for the treatment of long-range electrostatic interactions in a 2-D slab have been incorporated into the simulation technique. We investigate the local bonding properties of Au−BDT contacts and molecular orientation distributions of BDT molecules. These results show that whereas different basis sets from ab initio calculations may generate different local bonding geometric parameters (the bond length, etc.) the packing structures of BDT molecules maintain approximately the same well-ordered herringbone structure with small peak differences in the probability distributions of global geometric parameters. The methodology developed here opens an avenue for classical simulations of a metal−molecule−metal complex in molecular electronics devices. },
131 Author = {Leng and Keffer, David J. and Cummings, Peter T.},
132 Date-Added = {2011-04-28 11:23:28 -0400},
133 Date-Modified = {2011-04-28 11:23:28 -0400},
134 Doi = {10.1021/jp034405s},
135 Eprint = {http://pubs.acs.org/doi/pdf/10.1021/jp034405s},
136 Journal = {The Journal of Physical Chemistry B},
137 Number = {43},
138 Pages = {11940-11950},
139 Title = {Structure and Dynamics of a Benzenedithiol Monolayer on a Au(111) Surface},
140 Url = {http://pubs.acs.org/doi/abs/10.1021/jp034405s},
141 Volume = {107},
142 Year = {2003},
143 Bdsk-Url-1 = {http://pubs.acs.org/doi/abs/10.1021/jp034405s},
144 Bdsk-Url-2 = {http://dx.doi.org/10.1021/jp034405s}}
145
146 @article{OPLSAA,
147 Abstract = {null},
148 Annote = {doi: 10.1021/ja9621760},
149 Author = {Jorgensen, William L. and Maxwell, David S. and Tirado-Rives, Julian},
150 Date = {1996/01/01},
151 Date-Added = {2011-02-04 18:54:58 -0500},
152 Date-Modified = {2011-02-04 18:54:58 -0500},
153 Do = {10.1021/ja9621760},
154 Isbn = {0002-7863},
155 Journal = {Journal of the American Chemical Society},
156 M3 = {doi: 10.1021/ja9621760},
157 Month = {01},
158 Number = {45},
159 Pages = {11225--11236},
160 Publisher = {American Chemical Society},
161 Title = {Development and Testing of the OPLS All-Atom Force Field on Conformational Energetics and Properties of Organic Liquids},
162 Ty = {JOUR},
163 Url = {http://dx.doi.org/10.1021/ja9621760},
164 Volume = {118},
165 Year = {1996},
166 Year1 = {1996/01/01},
167 Bdsk-Url-1 = {http://dx.doi.org/10.1021/ja9621760}}
168
169 @article{TraPPE-UA.alkylbenzenes,
170 Author = {Wick, Collin D. and Martin, Marcus G. and Siepmann, J. Ilja},
171 Date-Added = {2011-02-04 18:31:46 -0500},
172 Date-Modified = {2011-02-04 18:32:22 -0500},
173 Doi = {10.1021/jp001044x},
174 Eprint = {http://pubs.acs.org/doi/pdf/10.1021/jp001044x},
175 Journal = {The Journal of Physical Chemistry B},
176 Number = {33},
177 Pages = {8008-8016},
178 Title = {Transferable Potentials for Phase Equilibria. 4. United-Atom Description of Linear and Branched Alkenes and Alkylbenzenes},
179 Url = {http://pubs.acs.org/doi/abs/10.1021/jp001044x},
180 Volume = {104},
181 Year = {2000},
182 Bdsk-Url-1 = {http://pubs.acs.org/doi/abs/10.1021/jp001044x},
183 Bdsk-Url-2 = {http://dx.doi.org/10.1021/jp001044x}}
184
185 @article{TraPPE-UA.alkanes,
186 Author = {Martin, Marcus G. and Siepmann, J. Ilja},
187 Date-Added = {2011-02-04 18:01:31 -0500},
188 Date-Modified = {2011-02-04 18:02:19 -0500},
189 Doi = {10.1021/jp972543+},
190 Eprint = {http://pubs.acs.org/doi/pdf/10.1021/jp972543%2B},
191 Journal = {The Journal of Physical Chemistry B},
192 Number = {14},
193 Pages = {2569-2577},
194 Title = {Transferable Potentials for Phase Equilibria. 1. United-Atom Description of n-Alkanes},
195 Url = {http://pubs.acs.org/doi/abs/10.1021/jp972543%2B},
196 Volume = {102},
197 Year = {1998},
198 Bdsk-Url-1 = {http://pubs.acs.org/doi/abs/10.1021/jp972543+},
199 Bdsk-Url-2 = {http://dx.doi.org/10.1021/jp972543+}}
200
201 @article{TraPPE-UA.thiols,
202 Author = {Lubna, Nusrat and Kamath, Ganesh and Potoff, Jeffrey J. and Rai, Neeraj and Siepmann, J. Ilja},
203 Date-Added = {2011-02-04 17:51:03 -0500},
204 Date-Modified = {2011-02-04 17:54:20 -0500},
205 Doi = {10.1021/jp0549125},
206 Eprint = {http://pubs.acs.org/doi/pdf/10.1021/jp0549125},
207 Journal = {The Journal of Physical Chemistry B},
208 Number = {50},
209 Pages = {24100-24107},
210 Title = {Transferable Potentials for Phase Equilibria. 8. United-Atom Description for Thiols, Sulfides, Disulfides, and Thiophene},
211 Url = {http://pubs.acs.org/doi/abs/10.1021/jp0549125},
212 Volume = {109},
213 Year = {2005},
214 Bdsk-Url-1 = {http://pubs.acs.org/doi/abs/10.1021/jp0549125},
215 Bdsk-Url-2 = {http://dx.doi.org/10.1021/jp0549125}}
216
217 @article{vlugt:cpc2007154,
218 Author = {Philipp Schapotschnikow and Ren{\'e} Pool and Thijs J.H. Vlugt},
219 Date-Added = {2011-02-01 16:00:11 -0500},
220 Date-Modified = {2011-02-04 18:21:59 -0500},
221 Doi = {DOI: 10.1016/j.cpc.2007.02.028},
222 Issn = {0010-4655},
223 Journal = {Computer Physics Communications},
224 Keywords = {Gold nanocrystals},
225 Note = {Proceedings of the Conference on Computational Physics 2006 - CCP 2006, Conference on Computational Physics 2006},
226 Number = {1-2},
227 Pages = {154 - 157},
228 Title = {Selective adsorption of alkyl thiols on gold in different geometries},
229 Url = {http://www.sciencedirect.com/science/article/B6TJ5-4N3WYP0-1/2/66dbe8892f456c230b9b8fcd9c23f456},
230 Volume = {177},
231 Year = {2007},
232 Bdsk-Url-1 = {http://www.sciencedirect.com/science/article/B6TJ5-4N3WYP0-1/2/66dbe8892f456c230b9b8fcd9c23f456},
233 Bdsk-Url-2 = {http://dx.doi.org/10.1016/j.cpc.2007.02.028}}
234
235 @article{packmol,
236 Author = {L. Mart\'{\i}nez and R. Andrade and Ernesto G. Birgin and Jos{\'e} Mario Mart\'{\i}nez},
237 Bibsource = {DBLP, http://dblp.uni-trier.de},
238 Date-Added = {2011-02-01 15:13:02 -0500},
239 Date-Modified = {2011-02-01 15:14:25 -0500},
240 Ee = {http://dx.doi.org/10.1002/jcc.21224},
241 Journal = {Journal of Computational Chemistry},
242 Number = {13},
243 Pages = {2157-2164},
244 Title = {PACKMOL: A package for building initial configurations for molecular dynamics simulations},
245 Volume = {30},
246 Year = {2009}}
247
248 @article{kuang:164101,
249 Author = {Shenyu Kuang and J. Daniel Gezelter},
250 Date-Added = {2011-01-31 17:12:35 -0500},
251 Date-Modified = {2011-01-31 17:12:35 -0500},
252 Doi = {10.1063/1.3499947},
253 Eid = {164101},
254 Journal = {The Journal of Chemical Physics},
255 Keywords = {linear momentum; molecular dynamics method; thermal conductivity; total energy; viscosity},
256 Number = {16},
257 Numpages = {9},
258 Pages = {164101},
259 Publisher = {AIP},
260 Title = {A gentler approach to RNEMD: Nonisotropic velocity scaling for computing thermal conductivity and shear viscosity},
261 Url = {http://link.aip.org/link/?JCP/133/164101/1},
262 Volume = {133},
263 Year = {2010},
264 Bdsk-Url-1 = {http://link.aip.org/link/?JCP/133/164101/1},
265 Bdsk-Url-2 = {http://dx.doi.org/10.1063/1.3499947}}
266
267 @article{muller:014102,
268 Author = {Thomas J. Muller and Michael Al-Samman and Florian Muller-Plathe},
269 Date-Added = {2010-09-16 19:19:25 -0400},
270 Date-Modified = {2010-09-16 19:19:25 -0400},
271 Doi = {10.1063/1.2943312},
272 Eid = {014102},
273 Journal = {The Journal of Chemical Physics},
274 Keywords = {intramolecular mechanics; Lennard-Jones potential; molecular dynamics method; thermostats; viscosity},
275 Number = {1},
276 Numpages = {8},
277 Pages = {014102},
278 Publisher = {AIP},
279 Title = {The influence of thermostats and manostats on reverse nonequilibrium molecular dynamics calculations of fluid viscosities},
280 Url = {http://link.aip.org/link/?JCP/129/014102/1},
281 Volume = {129},
282 Year = {2008},
283 Bdsk-Url-1 = {http://link.aip.org/link/?JCP/129/014102/1},
284 Bdsk-Url-2 = {http://dx.doi.org/10.1063/1.2943312}}
285
286 @article{wolf:8254,
287 Author = {D. Wolf and P. Keblinski and S. R. Phillpot and J. Eggebrecht},
288 Date-Added = {2010-09-16 19:01:51 -0400},
289 Date-Modified = {2010-09-16 19:01:51 -0400},
290 Doi = {10.1063/1.478738},
291 Journal = {J. Chem. Phys.},
292 Keywords = {POTENTIAL ENERGY; COULOMB FIELD; COULOMB ENERGY; LATTICE PARAMETERS; potential energy functions; lattice dynamics; lattice energy},
293 Number = {17},
294 Pages = {8254-8282},
295 Publisher = {AIP},
296 Title = {Exact method for the simulation of Coulombic systems by spherically truncated, pairwise r[sup -1] summation},
297 Url = {http://link.aip.org/link/?JCP/110/8254/1},
298 Volume = {110},
299 Year = {1999},
300 Bdsk-Url-1 = {http://link.aip.org/link/?JCP/110/8254/1},
301 Bdsk-Url-2 = {http://dx.doi.org/10.1063/1.478738}}
302
303 @article{HeX:1993,
304 Abstract = {A recently developed non-equilibrium molecular dynamics algorithm for
305 heat conduction is used to compute the thermal conductivity, thermal
306 diffusion factor, and heat of transfer in binary Lennard-Jones
307 mixtures. An internal energy flux is established with local source and
308 sink terms for kinetic energy.
309 Simulations of isotope mixtures covering a range of densities and mass
310 ratios show that the lighter component prefers the hot side of the
311 system at stationary state. This implies a positive thermal diffusion
312 factor in the definition we have adopted here. The molecular basis for
313 the Soret effect is studied by analysing the energy flux through the
314 system. In all cases we found that there is a difference in the
315 relative contributions when we compare the hot and cold sides of the
316 system. The contribution from the lighter component is predominantly
317 flux of kinetic energy, and this contribution increases from the cold
318 to the hot side. The contribution from the heavier component is
319 predominantly energy transfer through molecular interactions, and it
320 increases from the hot to the cold side. This explains why the thermal
321 diffusion factor is positive; heal is conducted more effectively
322 through the system if the lighter component is enriched at the hot
323 side. Even for very large heat fluxes, we find a linear or almost
324 linear temperature profile through the system, and a constant thermal
325 conductivity. The entropy production per unit volume and unit time
326 increases from the hot to the cold side.},
327 Author = {Hafskjold, B and Ikeshoji, T and Ratkje, SK},
328 Date-Added = {2010-09-15 16:52:45 -0400},
329 Date-Modified = {2010-09-15 16:54:23 -0400},
330 Issn = {{0026-8976}},
331 Journal = {Mol. Phys.},
332 Month = {DEC},
333 Number = {6},
334 Pages = {1389-1412},
335 Title = {ON THE MOLECULAR MECHANISM OF THERMAL-DIFFUSION IN LIQUIDS},
336 Unique-Id = {ISI:A1993MQ34500009},
337 Volume = {80},
338 Year = {1993}}
339
340 @article{HeX:1994,
341 Abstract = {This paper presents a new algorithm for non-equilibrium molecular
342 dynamics, where a temperature gradient is established in a system with
343 periodic boundary conditions. At each time step in the simulation, a
344 fixed amount of energy is supplied to a hot region by scaling the
345 velocity of each particle in it, subject to conservation of total
346 momentum. An equal amount of energy is likewise withdrawn from a cold
347 region at each time step. Between the hot and cold regions is a region
348 through which an energy flux is established. Two configurations of hot
349 and cold regions are proposed. Using a stacked layer structure, the
350 instantaneous local energy flux for a 128-particle Lennard-Jones system
351 in liquid was found to be in good agreement with the macroscopic theory
352 of heat conduction at stationary state, except in and near the hot and
353 cold regions. Thermal conductivity calculated for the 128-particle
354 system was about 10\% smaller than the literature value obtained by
355 molecular dynamics calculations. One run with a 1024-particle system
356 showed an agreement with the literature value within statistical error
357 (1-2\%). Using a unit cell with a cold spherical region at the centre
358 and a hot region in the perimeter of the cube, an initial gaseous state
359 of argon was separated into gas and liquid phases. Energy fluxes due to
360 intermolecular energy transfer and transport of kinetic energy dominate
361 in the liquid and gas phases, respectively.},
362 Author = {Ikeshoji, T and Hafskjold, B},
363 Date-Added = {2010-09-15 16:52:45 -0400},
364 Date-Modified = {2010-09-15 16:54:37 -0400},
365 Issn = {0026-8976},
366 Journal = {Mol. Phys.},
367 Month = {FEB},
368 Number = {2},
369 Pages = {251-261},
370 Title = {NONEQUILIBRIUM MOLECULAR-DYNAMICS CALCULATION OF HEAT-CONDUCTION IN LIQUID AND THROUGH LIQUID-GAS INTERFACE},
371 Unique-Id = {ISI:A1994MY17400001},
372 Volume = {81},
373 Year = {1994}}
374
375 @article{plech:195423,
376 Author = {A. Plech and V. Kotaidis and S. Gresillon and C. Dahmen and G. von Plessen},
377 Date-Added = {2010-08-12 11:34:55 -0400},
378 Date-Modified = {2010-08-12 11:34:55 -0400},
379 Eid = {195423},
380 Journal = {Phys. Rev. B},
381 Keywords = {gold; laser materials processing; melting; nanoparticles; time resolved spectra; X-ray scattering; lattice dynamics; high-speed optical techniques; cooling; thermal resistance; thermal conductivity; long-range order},
382 Local-Url = {file://localhost/Users/charles/Documents/Papers/PhysRevB_70_195423.pdf},
383 Number = {19},
384 Numpages = {7},
385 Pages = {195423},
386 Publisher = {APS},
387 Title = {Laser-induced heating and melting of gold nanoparticles studied by time-resolved x-ray scattering},
388 Url = {http://link.aps.org/abstract/PRB/v70/e195423},
389 Volume = {70},
390 Year = {2004},
391 Bdsk-Url-1 = {http://link.aps.org/abstract/PRB/v70/e195423}}
392
393 @article{Wilson:2002uq,
394 Abstract = {We investigate suspensions of 3-10 nm diameter Au, Pt, and AuPd nanoparticles as probes of thermal transport in fluids and determine approximate values for the thermal conductance G of the particle/fluid interfaces. Subpicosecond lambda=770 nm optical pulses from a Ti:sapphire mode-locked laser are used to heat the particles and interrogate the decay of their temperature through time-resolved changes in optical absorption. The thermal decay of alkanethiol-terminated Au nanoparticles in toluene is partially obscured by other effects; we set a lower limit G>20 MW m(-2)K(-1). The thermal decay of citrate-stabilized Pt nanoparticles in water gives Gapproximate to130 MW m(-2) K-1. AuPd alloy nanoparticles in toluene and stabilized by alkanethiol termination give Gapproximate to5 MW m(-2) K-1. The measured G are within a factor of 2 of theoretical estimates based on the diffuse-mismatch model.},
395 Author = {Wilson, OM and Hu, XY and Cahill, DG and Braun, PV},
396 Date-Added = {2010-08-12 11:31:02 -0400},
397 Date-Modified = {2010-08-12 11:31:02 -0400},
398 Doi = {ARTN 224301},
399 Journal = {Phys. Rev. B},
400 Local-Url = {file://localhost/Users/charles/Documents/Papers/e2243010.pdf},
401 Title = {Colloidal metal particles as probes of nanoscale thermal transport in fluids},
402 Volume = {66},
403 Year = {2002},
404 Bdsk-Url-1 = {http://dx.doi.org/224301}}
405
406 @article{RevModPhys.61.605,
407 Author = {Swartz, E. T. and Pohl, R. O.},
408 Date-Added = {2010-08-06 17:03:01 -0400},
409 Date-Modified = {2010-08-06 17:03:01 -0400},
410 Doi = {10.1103/RevModPhys.61.605},
411 Journal = {Rev. Mod. Phys.},
412 Month = {Jul},
413 Number = {3},
414 Numpages = {63},
415 Pages = {605--668},
416 Publisher = {American Physical Society},
417 Title = {Thermal boundary resistance},
418 Volume = {61},
419 Year = {1989},
420 Bdsk-Url-1 = {http://dx.doi.org/10.1103/RevModPhys.61.605}}
421
422 @article{cahill:793,
423 Author = {David G. Cahill and Wayne K. Ford and Kenneth E. Goodson and Gerald D. Mahan and Arun Majumdar and Humphrey J. Maris and Roberto Merlin and Simon R. Phillpot},
424 Date-Added = {2010-08-06 17:02:22 -0400},
425 Date-Modified = {2010-08-06 17:02:22 -0400},
426 Doi = {10.1063/1.1524305},
427 Journal = {J. Applied Phys.},
428 Keywords = {nanostructured materials; reviews; thermal conductivity; interface phenomena; molecular dynamics method; thermal management (packaging); Boltzmann equation; carbon nanotubes; porosity; semiconductor superlattices; thermoreflectance; interface phonons; thermoelectricity; phonon-phonon interactions},
429 Number = {2},
430 Pages = {793-818},
431 Publisher = {AIP},
432 Title = {Nanoscale thermal transport},
433 Url = {http://link.aip.org/link/?JAP/93/793/1},
434 Volume = {93},
435 Year = {2003},
436 Bdsk-Url-1 = {http://link.aip.org/link/?JAP/93/793/1},
437 Bdsk-Url-2 = {http://dx.doi.org/10.1063/1.1524305}}
438
439 @inbook{Hoffman:2001sf,
440 Address = {New York},
441 Annote = {LDR 01107cam 2200253 a 4500
442 001 12358442
443 005 20070910074423.0
444 008 010326s2001 nyua b 001 0 eng
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446 925 0 $aacquire$b2 shelf copies$xpolicy default
447 955 $ato ASCD pc23 03-26-01; jp20 03-27-01 to subj; jp99 to SL 03-27-01; jp85 to Dewey 03-27-01; aa01 03-28-01$aps02 2001-10-04 bk rec'd, to CIP ver.;$fpv04 2001-10-31 CIP ver to BCCD$ajp01 2001-12-06 c. 2 to BCCD
448 010 $a 2001028633
449 020 $a0824704436 (acid-free paper)
450 040 $aDLC$cDLC$dDLC
451 050 00 $aQA297$b.H588 2001
452 082 00 $a519.4$221
453 100 1 $aHoffman, Joe D.,$d1934-
454 245 10 $aNumerical methods for engineers and scientists /$cJoe D. Hoffman.
455 250 $a2nd ed., rev. and expanded.
456 260 $aNew York :$bMarcel Dekker,$cc2001.
457 300 $axi, 823 p. :$bill. ;$c26 cm.
458 504 $aIncludes bibliographical references (p. 775-777) and index.
459 650 0 $aNumerical analysis.
460 856 42 $3Publisher description$uhttp://www.loc.gov/catdir/enhancements/fy0743/2001028633-d.html
461 },
462 Author = {Hoffman, Joe D.},
463 Call-Number = {QA297},
464 Date-Added = {2010-07-15 16:32:02 -0400},
465 Date-Modified = {2010-07-19 16:49:37 -0400},
466 Dewey-Call-Number = {519.4},
467 Edition = {2nd ed., rev. and expanded},
468 Genre = {Numerical analysis},
469 Isbn = {0824704436 (acid-free paper)},
470 Library-Id = {2001028633},
471 Pages = {157},
472 Publisher = {Marcel Dekker},
473 Title = {Numerical methods for engineers and scientists},
474 Url = {http://www.loc.gov/catdir/enhancements/fy0743/2001028633-d.html},
475 Year = {2001},
476 Bdsk-Url-1 = {http://www.loc.gov/catdir/enhancements/fy0743/2001028633-d.html}}
477
478 @article{Vardeman:2008fk,
479 Abstract = {Using molecular dynamics simulations, we have simulated the rapid cooling experienced by bimetallic nanoparticles following laser excitation at the plasmon resonance and find evidence that glassy beads, specifically Ag-Cu bimetallic particles at the eutectic composition (60\% Ag, 40\% Cu), can be formed during these experiments. The bimetallic nanoparticles are embedded in an implicit solvent with a viscosity tuned to yield cooling curves that match the experimental cooling behavior as closely as possible. Because the nanoparticles have a large surface-to-volume ratio, experimentally realistic cooling rates are accessible via relatively short simulations. The presence of glassy structural features was verified using bond orientational order parameters that are sensitive to the formation of local icosahedral ordering in condensed phases. As the particles cool from the liquid droplet state into glassy beads, a silver-rich monolayer develops on the outer surface and local icosahedra can develop around the silver atoms in this monolayer. However, we observe a strong preference for the local icosahedral ordering around the copper atoms in the particles. As the particles cool, these local icosahedral structures grow to include a larger fraction of the atoms in the nanoparticle, eventually leading to a glassy nanosphere.},
480 Address = {1155 16TH ST, NW, WASHINGTON, DC 20036 USA},
481 Author = {{Vardeman II}, Charles F. and Gezelter, J. Daniel},
482 Date-Added = {2010-07-13 11:48:22 -0400},
483 Date-Modified = {2010-07-19 16:20:01 -0400},
484 Doi = {DOI 10.1021/jp710063g},
485 Isi = {000253512400021},
486 Isi-Recid = {160903603},
487 Isi-Ref-Recids = {144152922 81445483 98913099 146167982 55512304 50985260 52031423 29272311 151055545 134895634 130292830 101988637 100757730 98524559 123952006 6025131 59492217 2078548 135495737 136941603 90709964 160903604 130558416 113800688 30137926 117888234 63632785 38926953 158293976 135246439 125693419 125789026 155583142 156430464 65888620 130160487 97576420 109490154 150229560 116057234 134425927 142869781 121706070 89390336 119150946 143383743 64066027 171282998 142688207 51429664 84591083 127696312 58160909 155366996 155654757 137551818 128633299 109033408 120457571 171282999 124947095 126857514 49630702 64115284 84689627 71842426 96309965 79034659 92658330 146168029 119238036 144824430 132319357 160903607 171283000 100274448},
488 Journal = {J. Phys. Chem. C},
489 Month = mar,
490 Number = {9},
491 Pages = {3283-3293},
492 Publisher = {AMER CHEMICAL SOC},
493 Times-Cited = {0},
494 Title = {Simulations of laser-induced glass formation in Ag-Cu nanoparticles},
495 Volume = {112},
496 Year = {2008},
497 Bdsk-Url-1 = {http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000253512400021}}
498
499 @article{PhysRevB.59.3527,
500 Author = {Qi, Yue and \c{C}a\v{g}in, Tahir and Kimura, Yoshitaka and {Goddard III}, William A.},
501 Date-Added = {2010-07-13 11:44:08 -0400},
502 Date-Modified = {2010-07-13 11:44:08 -0400},
503 Doi = {10.1103/PhysRevB.59.3527},
504 Journal = {Phys. Rev. B},
505 Local-Url = {file://localhost/Users/charles/Documents/Papers/Qi/1999.pdf},
506 Month = {Feb},
507 Number = {5},
508 Numpages = {6},
509 Pages = {3527-3533},
510 Publisher = {American Physical Society},
511 Title = {Molecular-dynamics simulations of glass formation and crystallization in binary liquid metals:\quad{}{C}u-{A}g and {C}u-{N}i},
512 Volume = {59},
513 Year = {1999},
514 Bdsk-Url-1 = {http://dx.doi.org/10.1103/PhysRevB.59.3527}}
515
516 @article{Medasani:2007uq,
517 Abstract = {We employ first-principles and empirical computational methods to study the surface energy and surface stress of silver nanoparticles. The structures, cohesive energies, and lattice contractions of spherical Ag nanoclusters in the size range 0.5-5.5 nm are analyzed using two different theoretical approaches: an ab initio density functional pseudopotential technique combined with the generalized gradient approximation and the embedded atom method. The surface energies and stresses obtained via the embedded atom method are found to be in good agreement with those predicted by the gradient-corrected ab initio density functional formalism. We estimate the surface energy of Ag nanoclusters to be in the range of 1.0-2.2 J/m(2). Our values are close to the bulk surface energy of silver, but are significantly lower than the recently reported value of 7.2 J/m(2) for free Ag nanoparticles derived from the Kelvin equation.},
518 Author = {Medasani, Bharat and Park, Young Ho and Vasiliev, Igor},
519 Date-Added = {2010-07-13 11:43:15 -0400},
520 Date-Modified = {2010-07-13 11:43:15 -0400},
521 Doi = {ARTN 235436},
522 Journal = {Phys. Rev. B},
523 Local-Url = {file://localhost/Users/charles/Documents/Papers/PhysRevB_75_235436.pdf},
524 Title = {Theoretical study of the surface energy, stress, and lattice contraction of silver nanoparticles},
525 Volume = {75},
526 Year = {2007},
527 Bdsk-Url-1 = {http://dx.doi.org/235436}}
528
529 @article{Wang:2005qy,
530 Abstract = {The surface structures of cubo-octahedral Pt-Mo nanoparticles have been investigated using the Monte Carlo method and modified embedded atom method potentials that we developed for Pt-Mo alloys. The cubo-octahedral Pt-Mo nanoparticles are constructed with disordered fcc configurations, with sizes from 2.5 to 5.0 nm, and with Pt concentrations from 60 to 90 atom \%. The equilibrium Pt-Mo nanoparticle configurations were generated through Monte Carlo simulations allowing both atomic displacements and element exchanges at 600 K. We predict that the Pt atoms weakly segregate to the surfaces of such nanoparticles. The Pt concentrations in the surface are calculated to be 5-14 atom \% higher than the Pt concentrations of the nanoparticles. Moreover, the Pt atoms preferentially segregate to the facet sites of the surface, while the Pt and Mo atoms tend to alternate along the edges and vertexes of these nanoparticles. We found that decreasing the size or increasing the Pt concentration leads to higher Pt concentrations but fewer Pt-Mo pairs in the Pt-Mo nanoparticle surfaces.},
531 Author = {Wang, GF and Van Hove, MA and Ross, PN and Baskes, MI},
532 Date-Added = {2010-07-13 11:42:50 -0400},
533 Date-Modified = {2010-07-13 11:42:50 -0400},
534 Doi = {DOI 10.1021/jp050116n},
535 Journal = {J. Phys. Chem. B},
536 Pages = {11683-11692},
537 Title = {Surface structures of cubo-octahedral Pt-Mo catalyst nanoparticles from Monte Carlo simulations},
538 Volume = {109},
539 Year = {2005},
540 Bdsk-Url-1 = {http://dx.doi.org/10.1021/jp050116n}}
541
542 @article{Chui:2003fk,
543 Abstract = {Molecular dynamics simulations of a platinum nanocluster consisting 250 atoms were performed at different temperatures between 70 K and 298 K. The semi-empirical, many-body Sutton-Chen (SC) potential was used to model the interatomic interaction in the metallic system. Regions of core or bulk-like atoms and surface atoms can be defined from analyses of structures, atomic coordination, and the local density function of atoms as defined in the SC potential. The core atoms in the nanoparticle behave as bulk-like metal atoms with a predominant face centered cubic (fcc) packing. The interface between surface atoms and core atoms is marked by a peak in the local density function and corresponds to near surface atoms. The near surface atoms and surface atoms prefer a hexagonal closed packing (hcp). The temperature and size effects on structures of the nanoparticle and the dynamics of the surface region and the core region are discussed.},
544 Author = {Chui, YH and Chan, KY},
545 Date-Added = {2010-07-13 11:42:32 -0400},
546 Date-Modified = {2010-07-13 11:42:32 -0400},
547 Doi = {DOI 10.1039/b302122j},
548 Journal = {Phys. Chem. Chem. Phys.},
549 Pages = {2869-2874},
550 Title = {Analyses of surface and core atoms in a platinum nanoparticle},
551 Volume = {5},
552 Year = {2003},
553 Bdsk-Url-1 = {http://dx.doi.org/10.1039/b302122j}}
554
555 @article{Sankaranarayanan:2005lr,
556 Abstract = {Bimetallic nanoclusters are of interest because of their utility in catalysis and sensors, The thermal characteristics of bimetallic Pt-Pd nanoclusters of different sizes and compositions were investigated through molecular dynamics simulations using quantum Sutton-Chen (QSC) many-body potentials, Monte Carlo simulations employing the bond order simulation model were used to generate minimum energy configurations, which were utilized as the starting point for molecular dynamics simulations. The calculated initial configurations of the Pt-Pd system consisted of surface segregated Pd atoms and a Pt-rich core, Melting characteristics were studied by following the changes in potential energy and heat capacity as functions of temperature, Structural changes accompanying the thermal evolution were studied by the bond order parameter method. The Pt-Pd clusters exhibited a two-stage melting: surface melting of the external Pd atoms followed by homogeneous melting of the Pt core. These transitions were found to depend on the composition and size of the nanocluster. Melting temperatures of the nanoclusters were found to be much lower than those of bulk Pt and Pd. Bulk melting temperatures of Pd and Pt simulated using periodic boundary conditions compare well with experimental values, thus providing justification for the use of QSC potentials in these simulations. Deformation parameters were calculated to characterize the structural evolution resulting from diffusion of Pd and Pt atoms, The results indicate that in Pd-Pt clusters, Pd atoms prefer to remain at the surface even after melting. In addition, Pt also tends to diffuse to the surface after melting due to reduction of its surface energy with temperature. This mixing pattern is different from those reported in some of the earlier Studies on melting of bimetallics.},
557 Author = {Sankaranarayanan, SKRS and Bhethanabotla, VR and Joseph, B},
558 Date-Added = {2010-07-13 11:42:13 -0400},
559 Date-Modified = {2010-07-13 11:42:13 -0400},
560 Doi = {ARTN 195415},
561 Journal = {Phys. Rev. B},
562 Title = {Molecular dynamics simulation study of the melting of Pd-Pt nanoclusters},
563 Volume = {71},
564 Year = {2005},
565 Bdsk-Url-1 = {http://dx.doi.org/195415}}
566
567 @article{Vardeman-II:2001jn,
568 Author = {C.~F. {Vardeman II} and J.~D. Gezelter},
569 Date-Added = {2010-07-13 11:41:50 -0400},
570 Date-Modified = {2010-07-13 11:41:50 -0400},
571 Journal = {J. Phys. Chem. A},
572 Local-Url = {file://localhost/Users/charles/Documents/Papers/Vardeman%20II/2001.pdf},
573 Number = {12},
574 Pages = {2568},
575 Title = {Comparing models for diffusion in supercooled liquids: The eutectic composition of the {A}g-{C}u alloy},
576 Volume = {105},
577 Year = {2001}}
578
579 @article{ShibataT._ja026764r,
580 Author = {Shibata, T. and Bunker, B.A. and Zhang, Z. and Meisel, D. and Vardeman, C.F. and Gezelter, J.D.},
581 Date-Added = {2010-07-13 11:41:36 -0400},
582 Date-Modified = {2010-07-13 11:41:36 -0400},
583 Journal = {J. Amer. Chem. Soc.},
584 Local-Url = {file://localhost/Users/charles/Documents/Papers/ja026764r.pdf},
585 Number = {40},
586 Pages = {11989-11996},
587 Title = {Size-Dependent Spontaneous Alloying of {A}u-{A}g Nanoparticles},
588 Url = {http://dx.doi.org/10.1021/ja026764r},
589 Volume = {124},
590 Year = {2002},
591 Bdsk-Url-1 = {http://dx.doi.org/10.1021/ja026764r}}
592
593 @article{Chen90,
594 Author = {A.~P. Sutton and J. Chen},
595 Date-Added = {2010-07-13 11:40:48 -0400},
596 Date-Modified = {2010-07-13 11:40:48 -0400},
597 Journal = {Phil. Mag. Lett.},
598 Pages = {139-146},
599 Title = {Long-Range Finnis Sinclair Potentials},
600 Volume = 61,
601 Year = {1990}}
602
603 @article{PhysRevB.33.7983,
604 Author = {Foiles, S. M. and Baskes, M. I. and Daw, M. S.},
605 Date-Added = {2010-07-13 11:40:28 -0400},
606 Date-Modified = {2010-07-13 11:40:28 -0400},
607 Doi = {10.1103/PhysRevB.33.7983},
608 Journal = {Phys. Rev. B},
609 Local-Url = {file://localhost/Users/charles/Documents/Papers/p7983_1.pdf},
610 Month = {Jun},
611 Number = {12},
612 Numpages = {8},
613 Pages = {7983-7991},
614 Publisher = {American Physical Society},
615 Title = {Embedded-atom-method functions for the fcc metals {C}u, {A}g, {A}u, {N}i, {P}d, {P}t, and their alloys},
616 Volume = {33},
617 Year = {1986},
618 Bdsk-Url-1 = {http://dx.doi.org/10.1103/PhysRevB.33.7983}}
619
620 @article{hoover85,
621 Author = {W.~G. Hoover},
622 Date-Added = {2010-07-13 11:24:30 -0400},
623 Date-Modified = {2010-07-13 11:24:30 -0400},
624 Journal = pra,
625 Pages = 1695,
626 Title = {Canonical dynamics: Equilibrium phase-space distributions},
627 Volume = 31,
628 Year = 1985}
629
630 @article{melchionna93,
631 Author = {S. Melchionna and G. Ciccotti and B.~L. Holian},
632 Date-Added = {2010-07-13 11:22:17 -0400},
633 Date-Modified = {2010-07-13 11:22:17 -0400},
634 Journal = {Mol. Phys.},
635 Pages = {533-544},
636 Title = {Hoover {\sc npt} dynamics for systems varying in shape and size},
637 Volume = 78,
638 Year = 1993}
639
640 @misc{openmd,
641 Author = {J. Daniel Gezelter and Shenyu Kuang and James Marr and Kelsey Stocker and Chunlei Li and Charles F. Vardeman and Teng Lin and Christopher J. Fennell and Xiuquan Sun and Kyle Daily and Yang Zheng and Matthew A. Meineke},
642 Date-Added = {2010-07-13 11:16:00 -0400},
643 Date-Modified = {2010-07-19 16:27:45 -0400},
644 Howpublished = {Available at {\tt http://openmd.net}},
645 Title = {{OpenMD, an open source engine for molecular dynamics}}}
646
647 @inbook{AshcroftMermin,
648 Address = {Belmont, CA},
649 Author = {Neil W. Ashcroft and N.~David Mermin},
650 Date-Added = {2010-07-12 14:26:49 -0400},
651 Date-Modified = {2010-07-22 13:37:20 -0400},
652 Pages = {21},
653 Publisher = {Brooks Cole},
654 Title = {Solid State Physics},
655 Year = {1976}}
656
657 @book{WagnerKruse,
658 Address = {Berlin},
659 Author = {W. Wagner and A. Kruse},
660 Date-Added = {2010-07-12 14:10:29 -0400},
661 Date-Modified = {2010-07-12 14:13:44 -0400},
662 Publisher = {Springer-Verlag},
663 Title = {Properties of Water and Steam, the Industrial Standard IAPWS-IF97 for the Thermodynamic Properties and Supplementary Equations for Other Properties},
664 Year = {1998}}
665
666 @article{ISI:000266247600008,
667 Abstract = {Temperature dependence of viscosity of butyl-3-methylimidazolium
668 hexafluorophosphate is investigated by non-equilibrium molecular
669 dynamics simulations with cosine-modulated force in the temperature
670 range from 360 to 480K. It is shown that this method is able to
671 correctly predict the shear viscosity. The simulation setting and
672 choice of the force field are discussed in detail. The all-atom force
673 field exhibits a bad convergence and the shear viscosity is
674 overestimated, while the simple united atom model predicts the kinetics
675 very well. The results are compared with the equilibrium molecular
676 dynamics simulations. The relationship between the diffusion
677 coefficient and viscosity is examined by means of the hydrodynamic
678 radii calculated from the Stokes-Einstein equation and the solvation
679 properties are discussed.},
680 Address = {4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND},
681 Affiliation = {Kolafa, J (Reprint Author), Prague Inst Chem Technol, Dept Phys Chem, CR-16628 Prague, Czech Republic. {[}Picalek, Jan; Kolafa, Jiri] Prague Inst Chem Technol, Dept Phys Chem, CR-16628 Prague, Czech Republic.},
682 Author = {Picalek, Jan and Kolafa, Jiri},
683 Author-Email = {jiri.kolafa@vscht.cz},
684 Date-Added = {2010-04-16 13:19:12 -0400},
685 Date-Modified = {2010-04-16 13:19:12 -0400},
686 Doc-Delivery-Number = {448FD},
687 Doi = {10.1080/08927020802680703},
688 Funding-Acknowledgement = {Czech Science Foundation {[}203/07/1006]; Czech Ministry of Education {[}LC512]},
689 Funding-Text = {We gratefully acknowledge a support from the Czech Science Foundation (project 203/07/1006) and the computing facilities from the Czech Ministry of Education (Center for Biomolecules and Complex Molecular Systems, project LC512).},
690 Issn = {0892-7022},
691 Journal = {Mol. Simul.},
692 Journal-Iso = {Mol. Simul.},
693 Keywords = {room temperature ionic liquids; viscosity; non-equilibrium molecular dynamics; solvation; imidazolium},
694 Keywords-Plus = {1-N-BUTYL-3-METHYLIMIDAZOLIUM HEXAFLUOROPHOSPHATE; PHYSICOCHEMICAL PROPERTIES; COMPUTER-SIMULATION; PHYSICAL-PROPERTIES; IMIDAZOLIUM CATION; FORCE-FIELD; AB-INITIO; TEMPERATURE; CHLORIDE; CONDUCTIVITY},
695 Language = {English},
696 Number = {8},
697 Number-Of-Cited-References = {50},
698 Pages = {685-690},
699 Publisher = {TAYLOR \& FRANCIS LTD},
700 Subject-Category = {Chemistry, Physical; Physics, Atomic, Molecular \& Chemical},
701 Times-Cited = {2},
702 Title = {Shear viscosity of ionic liquids from non-equilibrium molecular dynamics simulation},
703 Type = {Article},
704 Unique-Id = {ISI:000266247600008},
705 Volume = {35},
706 Year = {2009},
707 Bdsk-Url-1 = {http://dx.doi.org/10.1080/08927020802680703%7D}}
708
709 @article{Vasquez:2004fk,
710 Abstract = {A method for fast calculation of viscosity from molecular dynamics simulation is revisited. The method consists of using a steady-state periodic perturbation. A methodology to choose the amplitude of the external perturbation, which is one of the major practical issues in the original technique of Gosling et al. {$[$}Mol. Phys. 26: 1475 (1973){$]$} is proposed. The amplitude of the perturbation required for fast caculations and the viscosity values for wide ranges of temperature and density of the Lennard-Jones (LJ) model fluid are reported. The viscosity results are in agreement with recent LJ viscosity calculations. Additionally, the simulations demonstrate that the proposed approach is suitable to efficiently generate viscosity data of good quality.},
711 Author = {Vasquez, V. R. and Macedo, E. A. and Zabaloy, M. S.},
712 Date = {2004/11/02/},
713 Date-Added = {2010-04-16 13:18:48 -0400},
714 Date-Modified = {2010-04-16 13:18:48 -0400},
715 Day = {02},
716 Journal = {Int. J. Thermophys.},
717 M3 = {10.1007/s10765-004-7736-3},
718 Month = {11},
719 Number = {6},
720 Pages = {1799--1818},
721 Title = {Lennard-Jones Viscosities in Wide Ranges of Temperature and Density: Fast Calculations Using a Steady--State Periodic Perturbation Method},
722 Ty = {JOUR},
723 Url = {http://dx.doi.org/10.1007/s10765-004-7736-3},
724 Volume = {25},
725 Year = {2004},
726 Bdsk-Url-1 = {http://dx.doi.org/10.1007/s10765-004-7736-3}}
727
728 @article{hess:209,
729 Author = {Berk Hess},
730 Date-Added = {2010-04-16 12:37:37 -0400},
731 Date-Modified = {2010-04-16 12:37:37 -0400},
732 Doi = {10.1063/1.1421362},
733 Journal = {J. Chem. Phys.},
734 Keywords = {viscosity; molecular dynamics method; liquid theory; shear flow},
735 Number = {1},
736 Pages = {209-217},
737 Publisher = {AIP},
738 Title = {Determining the shear viscosity of model liquids from molecular dynamics simulations},
739 Url = {http://link.aip.org/link/?JCP/116/209/1},
740 Volume = {116},
741 Year = {2002},
742 Bdsk-Url-1 = {http://link.aip.org/link/?JCP/116/209/1},
743 Bdsk-Url-2 = {http://dx.doi.org/10.1063/1.1421362}}
744
745 @article{backer:154503,
746 Author = {J. A. Backer and C. P. Lowe and H. C. J. Hoefsloot and P. D. Iedema},
747 Date-Added = {2010-04-16 12:37:37 -0400},
748 Date-Modified = {2010-04-16 12:37:37 -0400},
749 Doi = {10.1063/1.1883163},
750 Eid = {154503},
751 Journal = {J. Chem. Phys.},
752 Keywords = {Poiseuille flow; flow simulation; Lennard-Jones potential; viscosity; boundary layers; computational fluid dynamics},
753 Number = {15},
754 Numpages = {6},
755 Pages = {154503},
756 Publisher = {AIP},
757 Title = {Poiseuille flow to measure the viscosity of particle model fluids},
758 Url = {http://link.aip.org/link/?JCP/122/154503/1},
759 Volume = {122},
760 Year = {2005},
761 Bdsk-Url-1 = {http://link.aip.org/link/?JCP/122/154503/1},
762 Bdsk-Url-2 = {http://dx.doi.org/10.1063/1.1883163}}
763
764 @article{daivis:541,
765 Author = {Peter J. Daivis and Denis J. Evans},
766 Date-Added = {2010-04-16 12:05:36 -0400},
767 Date-Modified = {2010-04-16 12:05:36 -0400},
768 Doi = {10.1063/1.466970},
769 Journal = {J. Chem. Phys.},
770 Keywords = {SHEAR; DECANE; FLOW MODELS; VOLUME; PRESSURE; NONEQUILIBRIUM; MOLECULAR DYNAMICS CALCULATIONS; COMPARATIVE EVALUATIONS; SIMULATION; STRAIN RATE; VISCOSITY; KUBO FORMULA},
771 Number = {1},
772 Pages = {541-547},
773 Publisher = {AIP},
774 Title = {Comparison of constant pressure and constant volume nonequilibrium simulations of sheared model decane},
775 Url = {http://link.aip.org/link/?JCP/100/541/1},
776 Volume = {100},
777 Year = {1994},
778 Bdsk-Url-1 = {http://link.aip.org/link/?JCP/100/541/1},
779 Bdsk-Url-2 = {http://dx.doi.org/10.1063/1.466970}}
780
781 @article{mondello:9327,
782 Author = {Maurizio Mondello and Gary S. Grest},
783 Date-Added = {2010-04-16 12:05:36 -0400},
784 Date-Modified = {2010-04-16 12:05:36 -0400},
785 Doi = {10.1063/1.474002},
786 Journal = {J. Chem. Phys.},
787 Keywords = {organic compounds; viscosity; digital simulation; molecular dynamics method},
788 Number = {22},
789 Pages = {9327-9336},
790 Publisher = {AIP},
791 Title = {Viscosity calculations of [bold n]-alkanes by equilibrium molecular dynamics},
792 Url = {http://link.aip.org/link/?JCP/106/9327/1},
793 Volume = {106},
794 Year = {1997},
795 Bdsk-Url-1 = {http://link.aip.org/link/?JCP/106/9327/1},
796 Bdsk-Url-2 = {http://dx.doi.org/10.1063/1.474002}}
797
798 @article{ISI:A1988Q205300014,
799 Address = {ONE GUNDPOWDER SQUARE, LONDON, ENGLAND EC4A 3DE},
800 Affiliation = {VOGELSANG, R (Reprint Author), RUHR UNIV BOCHUM,UNIV STR 150,D-4630 BOCHUM,FED REP GER. UNIV DUISBURG,THERMODYNAM,D-4100 DUISBURG,FED REP GER.},
801 Author = {Vogelsang, R and Hoheisel, G and Luckas, M},
802 Date-Added = {2010-04-14 16:20:24 -0400},
803 Date-Modified = {2010-04-14 16:20:24 -0400},
804 Doc-Delivery-Number = {Q2053},
805 Issn = {0026-8976},
806 Journal = {Mol. Phys.},
807 Journal-Iso = {Mol. Phys.},
808 Language = {English},
809 Month = {AUG 20},
810 Number = {6},
811 Number-Of-Cited-References = {14},
812 Pages = {1203-1213},
813 Publisher = {TAYLOR \& FRANCIS LTD},
814 Subject-Category = {Physics, Atomic, Molecular \& Chemical},
815 Times-Cited = {12},
816 Title = {SHEAR VISCOSITY AND THERMAL-CONDUCTIVITY OF THE LENNARD-JONES LIQUID COMPUTED USING MOLECULAR-DYNAMICS AND PREDICTED BY A MEMORY FUNCTION MODEL FOR A LARGE NUMBER OF STATES},
817 Type = {Article},
818 Unique-Id = {ISI:A1988Q205300014},
819 Volume = {64},
820 Year = {1988}}
821
822 @article{ISI:000261835100054,
823 Abstract = {Transport properties of liquid methanol and ethanol are predicted by
824 molecular dynamics simulation. The molecular models for the alcohols
825 are rigid, nonpolarizable, and of united-atom type. They were developed
826 in preceding work using experimental vapor-liquid equilibrium data
827 only. Self- and Maxwell-Stefan diffusion coefficients as well as the
828 shear viscosity of methanol, ethanol, and their binary mixture are
829 determined using equilibrium molecular dynamics and the Green-Kubo
830 formalism. Nonequilibrium molecular dynamics is used for predicting the
831 thermal conductivity of the two pure substances. The transport
832 properties of the fluids are calculated over a wide temperature range
833 at ambient pressure and compared with experimental and simulation data
834 from the literature. Overall, a very good agreement with the experiment
835 is found. For instance, the self-diffusion coefficient and the shear
836 viscosity are predicted with average deviations of less than 8\% for
837 the pure alcohols and 12\% for the mixture. The predicted thermal
838 conductivity agrees on average within 5\% with the experimental data.
839 Additionally, some velocity and shear viscosity autocorrelation
840 functions are presented and discussed. Radial distribution functions
841 for ethanol are also presented. The predicted excess volume, excess
842 enthalpy, and the vapor-liquid equilibrium of the binary mixture
843 methanol + ethanol are assessed and agree well with experimental data.},
844 Address = {1155 16TH ST, NW, WASHINGTON, DC 20036 USA},
845 Affiliation = {Vrabec, J (Reprint Author), Univ Stuttgart, Inst Thermodynam \& Thermal Proc Engn, D-70550 Stuttgart, Germany. {[}Vrabec, Jadran] Univ Stuttgart, Inst Thermodynam \& Thermal Proc Engn, D-70550 Stuttgart, Germany. {[}Guevara-Carrion, Gabriela; Hasse, Hans] Univ Kaiserslautern, Lab Engn Thermodynam, D-67663 Kaiserslautern, Germany. {[}Nieto-Draghi, Carlos] Inst Francais Petr, F-92852 Rueil Malmaison, France.},
846 Author = {Guevara-Carrion, Gabriela and Nieto-Draghi, Carlos and Vrabec, Jadran and Hasse, Hans},
847 Author-Email = {vrabec@itt.uni-stuttgart.de},
848 Date-Added = {2010-04-14 15:43:29 -0400},
849 Date-Modified = {2010-04-14 15:43:29 -0400},
850 Doc-Delivery-Number = {385SY},
851 Doi = {10.1021/jp805584d},
852 Issn = {1520-6106},
853 Journal = {J. Phys. Chem. B},
854 Journal-Iso = {J. Phys. Chem. B},
855 Keywords-Plus = {STEFAN DIFFUSION-COEFFICIENTS; MONTE-CARLO CALCULATIONS; ATOM FORCE-FIELD; SELF-DIFFUSION; DYNAMICS SIMULATION; PHASE-EQUILIBRIA; LIQUID METHANOL; TEMPERATURE-DEPENDENCE; COMPUTER-SIMULATION; MONOHYDRIC ALCOHOLS},
856 Language = {English},
857 Month = {DEC 25},
858 Number = {51},
859 Number-Of-Cited-References = {86},
860 Pages = {16664-16674},
861 Publisher = {AMER CHEMICAL SOC},
862 Subject-Category = {Chemistry, Physical},
863 Times-Cited = {5},
864 Title = {Prediction of Transport Properties by Molecular Simulation: Methanol and Ethanol and Their Mixture},
865 Type = {Article},
866 Unique-Id = {ISI:000261835100054},
867 Volume = {112},
868 Year = {2008},
869 Bdsk-Url-1 = {http://dx.doi.org/10.1021/jp805584d%7D}}
870
871 @article{ISI:000258460400020,
872 Abstract = {Nonequilibrium molecular dynamics simulations with the nonpolarizable
873 SPC/E (Berendsen et al., J. Phys. Chem. 1987, 91, 6269) and the
874 polarizable COS/G2 (Yu and van Gunsteren, J. Chem. Phys. 2004, 121,
875 9549) force fields have been employed to calculate the thermal
876 conductivity and other associated properties of methane hydrate over a
877 temperature range from 30 to 260 K. The calculated results are compared
878 to experimental data over this same range. The values of the thermal
879 conductivity calculated with the COS/G2 model are closer to the
880 experimental values than are those calculated with the nonpolarizable
881 SPC/E model. The calculations match the temperature trend in the
882 experimental data at temperatures below 50 K; however, they exhibit a
883 slight decrease in thermal conductivity at higher temperatures in
884 comparison to an opposite trend in the experimental data. The
885 calculated thermal conductivity values are found to be relatively
886 insensitive to the occupancy of the cages except at low (T <= 50 K)
887 temperatures, which indicates that the differences between the two
888 lattice structures may have a more dominant role than generally thought
889 in explaining the low thermal conductivity of methane hydrate compared
890 to ice Ih. The introduction of defects into the water lattice is found
891 to cause a reduction in the thermal conductivity but to have a
892 negligible impact on its temperature dependence.},
893 Address = {1155 16TH ST, NW, WASHINGTON, DC 20036 USA},
894 Affiliation = {Jordan, KD (Reprint Author), US DOE, Natl Energy Technol Lab, POB 10940, Pittsburgh, PA 15236 USA. {[}Jiang, Hao; Myshakin, Evgeniy M.; Jordan, Kenneth D.; Warzinski, Robert P.] US DOE, Natl Energy Technol Lab, Pittsburgh, PA 15236 USA. {[}Jiang, Hao; Jordan, Kenneth D.] Univ Pittsburgh, Dept Chem, Pittsburgh, PA 15260 USA. {[}Jiang, Hao; Jordan, Kenneth D.] Univ Pittsburgh, Ctr Mol \& Mat Simulat, Pittsburgh, PA 15260 USA. {[}Myshakin, Evgeniy M.] Parsons Project Serv Inc, South Pk, PA 15129 USA.},
895 Author = {Jiang, Hao and Myshakin, Evgeniy M. and Jordan, Kenneth D. and Warzinski, Robert P.},
896 Date-Added = {2010-04-14 15:38:14 -0400},
897 Date-Modified = {2010-04-14 15:38:14 -0400},
898 Doc-Delivery-Number = {337UG},
899 Doi = {10.1021/jp802942v},
900 Funding-Acknowledgement = {E.M.M. ; National Energy Technology Laboratory's Office of Research and Development {[}41817.660.01.03]; ORISE Part-Time Faculty Program ; {[}DE-AM26-04NT41817]; {[}41817.606.06.03]},
901 Funding-Text = {We thank Drs. John Tse, Niall English, and Alan McGaughey for their comments. H.J. and K.D.J. performed this work under Contract DE-AM26-04NT41817, Subtask 41817.606.06.03, and E.M.M. performed this work under the same contract, Subtask 41817.660.01.03, in support of the National Energy Technology Laboratory's Office of Research and Development. K.D.J. was also supported at NETL by the ORISE Part-Time Faculty Program during the early stages of this work.},
902 Issn = {1520-6106},
903 Journal = {J. Phys. Chem. B},
904 Journal-Iso = {J. Phys. Chem. B},
905 Keywords-Plus = {LIQUID WATER; CLATHRATE HYDRATE; HEAT-CAPACITY; FORCE-FIELDS; ICE; ANHARMONICITY; SUMMATION; MODELS; SILICA},
906 Language = {English},
907 Month = {AUG 21},
908 Number = {33},
909 Number-Of-Cited-References = {51},
910 Pages = {10207-10216},
911 Publisher = {AMER CHEMICAL SOC},
912 Subject-Category = {Chemistry, Physical},
913 Times-Cited = {8},
914 Title = {Molecular dynamics Simulations of the thermal conductivity of methane hydrate},
915 Type = {Article},
916 Unique-Id = {ISI:000258460400020},
917 Volume = {112},
918 Year = {2008},
919 Bdsk-Url-1 = {http://dx.doi.org/10.1021/jp802942v%7D}}
920
921 @article{ISI:000184808400018,
922 Abstract = {A new non-equilibrium molecular dynamics algorithm is presented based
923 on the original work of Willer-Plathe, (1997, J. chem. Phys., 106,
924 6082), for the non-equilibrium simulation of heat transport maintaining
925 fixed the total momentum as well as the total energy of the system. The
926 presented scheme preserves these properties but, unlike the original
927 algorithm, is able to deal with multicomponent systems, that is with
928 particles of different mass independently of their relative
929 concentration. The main idea behind the new procedure is to consider an
930 exchange of momentum and energy between the particles in the hot and
931 cold regions, to maintain the non-equilibrium conditions, as if they
932 undergo a hypothetical elastic collision. The new algorithm can also be
933 employed in multicomponent systems for molecular fluids and in a wide
934 range of thermodynamic conditions.},
935 Address = {4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND},
936 Affiliation = {Nieto-Draghi, C (Reprint Author), Univ Rovira \& Virgili, ETSEQ, Dept Engn Quim, Avda Paisos Catalans 26, Tarragona 43007, Spain. Univ Rovira \& Virgili, ETSEQ, Dept Engn Quim, Tarragona 43007, Spain.},
937 Author = {Nieto-Draghi, C and Avalos, JB},
938 Date-Added = {2010-04-14 12:48:08 -0400},
939 Date-Modified = {2010-04-14 12:48:08 -0400},
940 Doc-Delivery-Number = {712QM},
941 Doi = {10.1080/0026897031000154338},
942 Issn = {0026-8976},
943 Journal = {Mol. Phys.},
944 Journal-Iso = {Mol. Phys.},
945 Keywords-Plus = {BINARY-LIQUID MIXTURES; THERMAL-CONDUCTIVITY; MATTER TRANSPORT; WATER},
946 Language = {English},
947 Month = {JUL 20},
948 Number = {14},
949 Number-Of-Cited-References = {20},
950 Pages = {2303-2307},
951 Publisher = {TAYLOR \& FRANCIS LTD},
952 Subject-Category = {Physics, Atomic, Molecular \& Chemical},
953 Times-Cited = {13},
954 Title = {Non-equilibrium momentum exchange algorithm for molecular dynamics simulation of heat flow in multicomponent systems},
955 Type = {Article},
956 Unique-Id = {ISI:000184808400018},
957 Volume = {101},
958 Year = {2003},
959 Bdsk-Url-1 = {http://dx.doi.org/10.1080/0026897031000154338%7D}}
960
961 @article{Bedrov:2000-1,
962 Abstract = {The thermal conductivity of liquid
963 octahydro-1,3,5,7-tetranitro-1,3,5,7-tetrazocine (HMX) has been
964 determined from imposed heat flux non-equilibrium molecular dynamics
965 (NEMD) simulations using a previously published quantum chemistry-based
966 atomistic potential. The thermal conductivity was determined in the
967 temperature domain 550 less than or equal to T less than or equal to
968 800 K, which corresponds approximately to the existence limits of the
969 liquid phase of HMX at atmospheric pressure. The NEMD predictions,
970 which comprise the first reported values for thermal conductivity of
971 HMX liquid, were found to be consistent with measured values for
972 crystalline HMX. The thermal conductivity of liquid HMX was found to
973 exhibit a much weaker temperature dependence than the shear viscosity
974 and self-diffusion coefficients. (C) 2000 Elsevier Science B.V. All
975 rights reserved.},
976 Address = {PO BOX 211, 1000 AE AMSTERDAM, NETHERLANDS},
977 Affiliation = {Bedrov, D (Reprint Author), Univ Utah, Dept Mat Sci \& Engn, 122 S Cent Campus Dr,Room 304, Salt Lake City, UT 84112 USA. Univ Utah, Dept Mat Sci \& Engn, Salt Lake City, UT 84112 USA. Univ Utah, Dept Chem \& Fuels Engn, Salt Lake City, UT 84112 USA. Univ Calif Los Alamos Natl Lab, Div Theoret, Los Alamos, NM 87545 USA.},
978 Author = {Bedrov, D and Smith, GD and Sewell, TD},
979 Date-Added = {2010-04-14 12:26:59 -0400},
980 Date-Modified = {2010-04-14 12:27:52 -0400},
981 Doc-Delivery-Number = {330PF},
982 Issn = {0009-2614},
983 Journal = {Chem. Phys. Lett.},
984 Journal-Iso = {Chem. Phys. Lett.},
985 Keywords-Plus = {FORCE-FIELD},
986 Language = {English},
987 Month = {JUN 30},
988 Number = {1-3},
989 Number-Of-Cited-References = {17},
990 Pages = {64-68},
991 Publisher = {ELSEVIER SCIENCE BV},
992 Subject-Category = {Chemistry, Physical; Physics, Atomic, Molecular \& Chemical},
993 Times-Cited = {19},
994 Title = {Thermal conductivity of liquid octahydro-1,3,5,7-tetranitro-1,3,5,7-tetrazocine (HMX) from molecular dynamics simulations},
995 Type = {Article},
996 Unique-Id = {ISI:000087969900011},
997 Volume = {324},
998 Year = {2000}}
999
1000 @article{ISI:000258840700015,
1001 Abstract = {By using the embedded-atom method (EAM), a series of molecular dynamics
1002 (MD) simulations are carried out to calculate the viscosity and
1003 self-diffusion coefficient of liquid copper from the normal to the
1004 undercooled states. The simulated results are in reasonable agreement
1005 with the experimental values available above the melting temperature
1006 that is also predicted from a solid-liquid-solid sandwich structure.
1007 The relationship between the viscosity and the self-diffusion
1008 coefficient is evaluated. It is found that the Stokes-Einstein and
1009 Sutherland-Einstein relations qualitatively describe this relationship
1010 within the simulation temperature range. However, the predicted
1011 constant from MD simulation is close to 1/(3 pi), which is larger than
1012 the constants of the Stokes-Einstein and Sutherland-Einstein relations.},
1013 Address = {233 SPRING ST, NEW YORK, NY 10013 USA},
1014 Affiliation = {Chen, M (Reprint Author), Tsinghua Univ, Dept Engn Mech, Beijing 100084, Peoples R China. {[}Han, X. J.; Chen, M.; Lue, Y. J.] Tsinghua Univ, Dept Engn Mech, Beijing 100084, Peoples R China.},
1015 Author = {Han, X. J. and Chen, M. and Lue, Y. J.},
1016 Author-Email = {mchen@tsinghua.edu.cn},
1017 Date-Added = {2010-04-14 12:00:38 -0400},
1018 Date-Modified = {2010-04-14 12:00:38 -0400},
1019 Doc-Delivery-Number = {343GH},
1020 Doi = {10.1007/s10765-008-0489-7},
1021 Funding-Acknowledgement = {China Postdoctoral Science Foundation ; National Natural Science Foundation of China {[}50395101, 50371043]},
1022 Funding-Text = {This work was financially supported by China Postdoctoral Science Foundation and the National Natural Science Foundation of China under grant Nos. of 50395101 and 50371043. The computations are carried out at the Tsinghua National Laboratory for Information Science and Technology, China. The authors are grateful to Mr. D. Q. Yu for valuable discussions.},
1023 Issn = {0195-928X},
1024 Journal = {Int. J. Thermophys.},
1025 Journal-Iso = {Int. J. Thermophys.},
1026 Keywords = {copper; molecular simulation; self-diffusion coefficient; viscosity; undercooled},
1027 Keywords-Plus = {EMBEDDED-ATOM MODEL; THERMOPHYSICAL PROPERTIES; COMPUTER-SIMULATION; TRANSITION-METALS; SHEAR VISCOSITY; ALLOYS; TEMPERATURE; DIFFUSION; BINDING; SURFACE},
1028 Language = {English},
1029 Month = {AUG},
1030 Number = {4},
1031 Number-Of-Cited-References = {39},
1032 Pages = {1408-1421},
1033 Publisher = {SPRINGER/PLENUM PUBLISHERS},
1034 Subject-Category = {Thermodynamics; Chemistry, Physical; Mechanics; Physics, Applied},
1035 Times-Cited = {2},
1036 Title = {Transport properties of undercooled liquid copper: A molecular dynamics study},
1037 Type = {Article},
1038 Unique-Id = {ISI:000258840700015},
1039 Volume = {29},
1040 Year = {2008},
1041 Bdsk-Url-1 = {http://dx.doi.org/10.1007/s10765-008-0489-7%7D}}
1042
1043 @article{Muller-Plathe:2008,
1044 Abstract = {Reverse nonequilibrium molecular dynamics and equilibrium molecular
1045 dynamics simulations were carried out to compute the shear viscosity of
1046 the pure ionic liquid system {[}bmim]{[}PF6] at 300 K. The two methods
1047 yielded consistent results which were also compared to experiments. The
1048 results showed that the reverse nonequilibrium molecular dynamics
1049 (RNEMD) methodology can successfully be applied to computation of
1050 highly viscous ionic liquids. Moreover, this study provides a
1051 validation of the atomistic force-field developed by Bhargava and
1052 Balasubramanian (J. Chem. Phys. 2007, 127, 114510) for dynamic
1053 properties.},
1054 Address = {1155 16TH ST, NW, WASHINGTON, DC 20036 USA},
1055 Affiliation = {Wei, Z (Reprint Author), Tech Univ Darmstadt, Petersenstr 30, D-64287 Darmstadt, Germany. {[}Wei Zhao; Leroy, Frederic; Mueller-Plathe, Florian] Tech Univ Darmstadt, D-64287 Darmstadt, Germany. {[}Balasubramanian, Sundaram] Indian Inst Sci, Jawaharlal Nehru Ctr Adv Sci Res, Chem \& Phys Mat Unit, Bangalore 560064, Karnataka, India.},
1056 Author = {Wei Zhao and Leroy, Frederic and Balasubramanian, Sundaram and M\"{u}ller-Plathe, Florian},
1057 Author-Email = {w.zhao@theo.chemie.tu-darmstadt.de},
1058 Date-Added = {2010-04-14 11:53:37 -0400},
1059 Date-Modified = {2010-04-14 11:54:20 -0400},
1060 Doc-Delivery-Number = {321VS},
1061 Doi = {10.1021/jp8017869},
1062 Issn = {1520-6106},
1063 Journal = {J. Phys. Chem. B},
1064 Journal-Iso = {J. Phys. Chem. B},
1065 Keywords-Plus = {TRANSPORT-PROPERTIES; FORCE-FIELD; TEMPERATURE; SIMULATION; IMIDAZOLIUM; FLUIDS; MODEL; BIS(TRIFLUOROMETHANESULFONYL)IMIDE; PYRIDINIUM; CHLORIDE},
1066 Language = {English},
1067 Month = {JUL 10},
1068 Number = {27},
1069 Number-Of-Cited-References = {49},
1070 Pages = {8129-8133},
1071 Publisher = {AMER CHEMICAL SOC},
1072 Subject-Category = {Chemistry, Physical},
1073 Times-Cited = {2},
1074 Title = {Shear viscosity of the ionic liquid 1-n-butyl 3-methylimidazolium hexafluorophosphate {[}bmim]{[}PF6] computed by reverse nonequilibrium molecular dynamics},
1075 Type = {Article},
1076 Unique-Id = {ISI:000257335200022},
1077 Volume = {112},
1078 Year = {2008},
1079 Bdsk-Url-1 = {http://dx.doi.org/10.1021/jp8017869%7D}}
1080
1081 @article{Muller-Plathe:2002,
1082 Abstract = {The reverse nonequilibrium molecular dynamics {[}F. Muller-Plathe,
1083 Phys. Rev. E 49, 359 (1999)] presented for the calculation of the shear
1084 viscosity of Lennard-Jones liquids has been extended to atomistic
1085 models of molecular liquids. The method is improved to overcome the
1086 problems due to the detailed molecular models. The new technique is
1087 besides a test with a Lennard-Jones fluid, applied on different
1088 realistic systems: liquid nitrogen, water, and hexane, in order to
1089 cover a large range of interactions and systems/architectures. We show
1090 that all the advantages of the method itemized previously are still
1091 valid, and that it has a very good efficiency and accuracy making it
1092 very competitive. (C) 2002 American Institute of Physics.},
1093 Address = {CIRCULATION \& FULFILLMENT DIV, 2 HUNTINGTON QUADRANGLE, STE 1 N O 1, MELVILLE, NY 11747-4501 USA},
1094 Affiliation = {Bordat, P (Reprint Author), Max Planck Inst Polymer Res, Ackermannweg 10, D-55128 Mainz, Germany. Max Planck Inst Polymer Res, D-55128 Mainz, Germany.},
1095 Author = {Bordat, P and M\"{u}ller-Plathe, F},
1096 Date-Added = {2010-04-14 11:34:42 -0400},
1097 Date-Modified = {2010-04-14 11:35:35 -0400},
1098 Doc-Delivery-Number = {521QV},
1099 Doi = {10.1063/1.1436124},
1100 Issn = {0021-9606},
1101 Journal = {J. Chem. Phys.},
1102 Journal-Iso = {J. Chem. Phys.},
1103 Keywords-Plus = {TRANSPORT-PROPERTIES; PHYSICAL-PROPERTIES; LIQUID ALKANES; N-HEPTADECANE; SIMULATION; WATER; FLOW; MIXTURES; BUTANE; NITROGEN},
1104 Language = {English},
1105 Month = {FEB 22},
1106 Number = {8},
1107 Number-Of-Cited-References = {47},
1108 Pages = {3362-3369},
1109 Publisher = {AMER INST PHYSICS},
1110 Subject-Category = {Physics, Atomic, Molecular \& Chemical},
1111 Times-Cited = {33},
1112 Title = {The shear viscosity of molecular fluids: A calculation by reverse nonequilibrium molecular dynamics},
1113 Type = {Article},
1114 Unique-Id = {ISI:000173853600023},
1115 Volume = {116},
1116 Year = {2002},
1117 Bdsk-Url-1 = {http://dx.doi.org/10.1063/1.1436124%7D}}
1118
1119 @article{ISI:000207079300006,
1120 Abstract = {Non-equilibrium Molecular Dynamics Simulation
1121 methods have been used to study the ability of
1122 Embedded Atom Method models of the metals copper and
1123 gold to reproduce the equilibrium and
1124 non-equilibrium behavior of metals at a stationary
1125 and at a moving solid/liquid interface. The
1126 equilibrium solid/vapor interface was shown to
1127 display a simple termination of the bulk until the
1128 temperature of the solid reaches approximate to 90\%
1129 of the bulk melting point. At and above such
1130 temperatures the systems exhibit a surface
1131 disodering known as surface melting. Non-equilibrium
1132 simulations emulating the action of a picosecond
1133 laser on the metal were performed to determine the
1134 regrowth velocity. For copper, the action of a 20 ps
1135 laser with an absorbed energy of 2-5 mJ/cm(2)
1136 produced a regrowth velocity of 83-100 m/s, in
1137 reasonable agreement with the value obtained by
1138 experiment (>60 m/s). For gold, similar conditions
1139 produced a slower regrowth velocity of 63 m/s at an
1140 absorbed energy of 5 mJ/cm(2). This is almost a
1141 factor of two too low in comparison to experiment
1142 (>100 m/s). The regrowth velocities of the metals
1143 seems unexpectedly close to experiment considering
1144 that the free-electron contribution is ignored in
1145 the Embeeded Atom Method models used.},
1146 Address = {4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND},
1147 Affiliation = {Clancy, P (Reprint Author), Cornell Univ, Sch Chem Engn, Ithaca, NY 14853 USA. {[}Richardson, Clifton F.; Clancy, Paulette] Cornell Univ, Sch Chem Engn, Ithaca, NY 14853 USA.},
1148 Author = {Richardson, Clifton F. and Clancy, Paulette},
1149 Date-Added = {2010-04-07 11:24:36 -0400},
1150 Date-Modified = {2010-04-07 11:24:36 -0400},
1151 Doc-Delivery-Number = {V04SY},
1152 Issn = {0892-7022},
1153 Journal = {Mol. Simul.},
1154 Journal-Iso = {Mol. Simul.},
1155 Keywords = {Non-equilibrium computer simulation; molecular dynamics; crystal growth; Embedded Atom Method models of metals},
1156 Language = {English},
1157 Number = {5-6},
1158 Number-Of-Cited-References = {36},
1159 Pages = {335-355},
1160 Publisher = {TAYLOR \& FRANCIS LTD},
1161 Subject-Category = {Chemistry, Physical; Physics, Atomic, Molecular \& Chemical},
1162 Times-Cited = {7},
1163 Title = {PICOSECOND LASER PROCESSING OF COPPER AND GOLD: A COMPUTER SIMULATION STUDY},
1164 Type = {Article},
1165 Unique-Id = {ISI:000207079300006},
1166 Volume = {7},
1167 Year = {1991}}
1168
1169 @article{ISI:000167766600035,
1170 Abstract = {Molecular dynamics simulations are used to
1171 investigate the separation of water films adjacent
1172 to a hot metal surface. The simulations clearly show
1173 that the water layers nearest the surface overheat
1174 and undergo explosive boiling. For thick films, the
1175 expansion of the vaporized molecules near the
1176 surface forces the outer water layers to move away
1177 from the surface. These results are of interest for
1178 mass spectrometry of biological molecules, steam
1179 cleaning of surfaces, and medical procedures.},
1180 Address = {1155 16TH ST, NW, WASHINGTON, DC 20036 USA},
1181 Affiliation = {Garrison, BJ (Reprint Author), Penn State Univ, Dept Chem, University Pk, PA 16802 USA. Penn State Univ, Dept Chem, University Pk, PA 16802 USA. Penn State Univ, Inst Mat Res, University Pk, PA 16802 USA. Univ Virginia, Dept Mat Sci \& Engn, Charlottesville, VA 22903 USA.},
1182 Author = {Dou, YS and Zhigilei, LV and Winograd, N and Garrison, BJ},
1183 Date-Added = {2010-03-11 15:32:14 -0500},
1184 Date-Modified = {2010-03-11 15:32:14 -0500},
1185 Doc-Delivery-Number = {416ED},
1186 Issn = {1089-5639},
1187 Journal = {J. Phys. Chem. A},
1188 Journal-Iso = {J. Phys. Chem. A},
1189 Keywords-Plus = {MOLECULAR-DYNAMICS SIMULATIONS; ASSISTED LASER-DESORPTION; FROZEN AQUEOUS-SOLUTIONS; COMPUTER-SIMULATION; ORGANIC-SOLIDS; VELOCITY DISTRIBUTIONS; PARTICLE BOMBARDMENT; MASS-SPECTROMETRY; PHASE EXPLOSION; LIQUID WATER},
1190 Language = {English},
1191 Month = {MAR 29},
1192 Number = {12},
1193 Number-Of-Cited-References = {65},
1194 Pages = {2748-2755},
1195 Publisher = {AMER CHEMICAL SOC},
1196 Subject-Category = {Chemistry, Physical; Physics, Atomic, Molecular \& Chemical},
1197 Times-Cited = {66},
1198 Title = {Explosive boiling of water films adjacent to heated surfaces: A microscopic description},
1199 Type = {Article},
1200 Unique-Id = {ISI:000167766600035},
1201 Volume = {105},
1202 Year = {2001}}
1203
1204 @article{Maginn:2010,
1205 Abstract = {The reverse nonequilibrium molecular dynamics
1206 (RNEMD) method calculates the shear viscosity of a
1207 fluid by imposing a nonphysical exchange of momentum
1208 and measuring the resulting shear velocity
1209 gradient. In this study we investigate the range of
1210 momentum flux values over which RNEMD yields usable
1211 (linear) velocity gradients. We find that nonlinear
1212 velocity profiles result primarily from gradients in
1213 fluid temperature and density. The temperature
1214 gradient results from conversion of heat into bulk
1215 kinetic energy, which is transformed back into heat
1216 elsewhere via viscous heating. An expression is
1217 derived to predict the temperature profile resulting
1218 from a specified momentum flux for a given fluid and
1219 simulation cell. Although primarily bounded above,
1220 we also describe milder low-flux limitations. RNEMD
1221 results for a Lennard-Jones fluid agree with
1222 equilibrium molecular dynamics and conventional
1223 nonequilibrium molecular dynamics calculations at
1224 low shear, but RNEMD underpredicts viscosity
1225 relative to conventional NEMD at high shear.},
1226 Address = {CIRCULATION \& FULFILLMENT DIV, 2 HUNTINGTON QUADRANGLE, STE 1 N O 1, MELVILLE, NY 11747-4501 USA},
1227 Affiliation = {Tenney, CM (Reprint Author), Univ Notre Dame, Dept Chem \& Biomol Engn, 182 Fitzpatrick Hall, Notre Dame, IN 46556 USA. {[}Tenney, Craig M.; Maginn, Edward J.] Univ Notre Dame, Dept Chem \& Biomol Engn, Notre Dame, IN 46556 USA.},
1228 Article-Number = {014103},
1229 Author = {Tenney, Craig M. and Maginn, Edward J.},
1230 Author-Email = {ed@nd.edu},
1231 Date-Added = {2010-03-09 13:08:41 -0500},
1232 Date-Modified = {2010-07-19 16:21:35 -0400},
1233 Doc-Delivery-Number = {542DQ},
1234 Doi = {10.1063/1.3276454},
1235 Funding-Acknowledgement = {U.S. Department of Energy {[}DE-FG36-08G088020]},
1236 Funding-Text = {Support for this work was provided by the U.S. Department of Energy (Grant No. DE-FG36-08G088020)},
1237 Issn = {0021-9606},
1238 Journal = {J. Chem. Phys.},
1239 Journal-Iso = {J. Chem. Phys.},
1240 Keywords = {Lennard-Jones potential; molecular dynamics method; Navier-Stokes equations; viscosity},
1241 Keywords-Plus = {CURRENT AUTOCORRELATION-FUNCTION; IONIC LIQUID; SIMULATIONS; TEMPERATURE},
1242 Language = {English},
1243 Month = {JAN 7},
1244 Number = {1},
1245 Number-Of-Cited-References = {20},
1246 Pages = {014103},
1247 Publisher = {AMER INST PHYSICS},
1248 Subject-Category = {Physics, Atomic, Molecular \& Chemical},
1249 Times-Cited = {0},
1250 Title = {Limitations and recommendations for the calculation of shear viscosity using reverse nonequilibrium molecular dynamics},
1251 Type = {Article},
1252 Unique-Id = {ISI:000273472300004},
1253 Volume = {132},
1254 Year = {2010},
1255 Bdsk-Url-1 = {http://dx.doi.org/10.1063/1.3276454}}
1256
1257 @article{Clancy:1992,
1258 Abstract = {The regrowth velocity of a crystal from a melt
1259 depends on contributions from the thermal
1260 conductivity, heat gradient, and latent heat. The
1261 relative contributions of these terms to the
1262 regrowth velocity of the pure metals copper and gold
1263 during liquid-phase epitaxy are evaluated. These
1264 results are used to explain how results from
1265 previous nonequilibrium molecular-dynamics
1266 simulations using classical potentials are able to
1267 predict regrowth velocities that are close to the
1268 experimental values. Results from equilibrium
1269 molecular dynamics showing the nature of the
1270 solid-vapor interface of an
1271 embedded-atom-method-modeled Cu57Ni43 alloy at a
1272 temperature corresponding to 62\% of the melting
1273 point are presented. The regrowth of this alloy
1274 following a simulation of a laser-processing
1275 experiment is also given, with use of nonequilibrium
1276 molecular-dynamics techniques. The thermal
1277 conductivity and temperature gradient in the
1278 simulation of the alloy are compared to those for
1279 the pure metals.},
1280 Address = {ONE PHYSICS ELLIPSE, COLLEGE PK, MD 20740-3844 USA},
1281 Affiliation = {CORNELL UNIV,SCH CHEM ENGN,ITHACA,NY 14853.},
1282 Author = {Richardson, C.~F. and Clancy, P},
1283 Date-Added = {2010-01-12 16:17:33 -0500},
1284 Date-Modified = {2010-04-08 17:18:25 -0400},
1285 Doc-Delivery-Number = {HX378},
1286 Issn = {0163-1829},
1287 Journal = {Phys. Rev. B},
1288 Journal-Iso = {Phys. Rev. B},
1289 Keywords-Plus = {SURFACE SEGREGATION; MOLECULAR-DYNAMICS; TRANSITION-METALS; SOLIDIFICATION; GROWTH; CU; NI},
1290 Language = {English},
1291 Month = {JUN 1},
1292 Number = {21},
1293 Number-Of-Cited-References = {24},
1294 Pages = {12260-12268},
1295 Publisher = {AMERICAN PHYSICAL SOC},
1296 Subject-Category = {Physics, Condensed Matter},
1297 Times-Cited = {11},
1298 Title = {CONTRIBUTION OF THERMAL-CONDUCTIVITY TO THE CRYSTAL-REGROWTH VELOCITY OF EMBEDDED-ATOM-METHOD-MODELED METALS AND METAL-ALLOYS},
1299 Type = {Article},
1300 Unique-Id = {ISI:A1992HX37800010},
1301 Volume = {45},
1302 Year = {1992}}
1303
1304 @article{Bedrov:2000,
1305 Abstract = {We have applied a new nonequilibrium molecular
1306 dynamics (NEMD) method {[}F. Muller-Plathe,
1307 J. Chem. Phys. 106, 6082 (1997)] previously applied
1308 to monatomic Lennard-Jones fluids in the
1309 determination of the thermal conductivity of
1310 molecular fluids. The method was modified in order
1311 to be applicable to systems with holonomic
1312 constraints. Because the method involves imposing a
1313 known heat flux it is particularly attractive for
1314 systems involving long-range and many-body
1315 interactions where calculation of the microscopic
1316 heat flux is difficult. The predicted thermal
1317 conductivities of liquid n-butane and water using
1318 the imposed-flux NEMD method were found to be in a
1319 good agreement with previous simulations and
1320 experiment. (C) 2000 American Institute of
1321 Physics. {[}S0021-9606(00)50841-1].},
1322 Address = {2 HUNTINGTON QUADRANGLE, STE 1NO1, MELVILLE, NY 11747-4501 USA},
1323 Affiliation = {Bedrov, D (Reprint Author), Univ Utah, Dept Chem \& Fuels Engn, 122 S Cent Campus Dr,Rm 304, Salt Lake City, UT 84112 USA. Univ Utah, Dept Chem \& Fuels Engn, Salt Lake City, UT 84112 USA. Univ Utah, Dept Mat Sci \& Engn, Salt Lake City, UT 84112 USA.},
1324 Author = {Bedrov, D and Smith, GD},
1325 Date-Added = {2009-11-05 18:21:18 -0500},
1326 Date-Modified = {2010-04-14 11:50:48 -0400},
1327 Doc-Delivery-Number = {369BF},
1328 Issn = {0021-9606},
1329 Journal = {J. Chem. Phys.},
1330 Journal-Iso = {J. Chem. Phys.},
1331 Keywords-Plus = {EFFECTIVE PAIR POTENTIALS; TRANSPORT-PROPERTIES; CANONICAL ENSEMBLE; NORMAL-BUTANE; ALGORITHMS; SHAKE; WATER},
1332 Language = {English},
1333 Month = {NOV 8},
1334 Number = {18},
1335 Number-Of-Cited-References = {26},
1336 Pages = {8080-8084},
1337 Publisher = {AMER INST PHYSICS},
1338 Subject-Category = {Physics, Atomic, Molecular \& Chemical},
1339 Times-Cited = {23},
1340 Title = {Thermal conductivity of molecular fluids from molecular dynamics simulations: Application of a new imposed-flux method},
1341 Type = {Article},
1342 Unique-Id = {ISI:000090151400044},
1343 Volume = {113},
1344 Year = {2000}}
1345
1346 @article{ISI:000231042800044,
1347 Abstract = {The reverse nonequilibrium molecular dynamics
1348 method for thermal conductivities is adapted to the
1349 investigation of molecular fluids. The method
1350 generates a heat flux through the system by suitably
1351 exchanging velocities of particles located in
1352 different regions. From the resulting temperature
1353 gradient, the thermal conductivity is then
1354 calculated. Different variants of the algorithm and
1355 their combinations with other system parameters are
1356 tested: exchange of atomic velocities versus
1357 exchange of molecular center-of-mass velocities,
1358 different exchange frequencies, molecular models
1359 with bond constraints versus models with flexible
1360 bonds, united-atom versus all-atom models, and
1361 presence versus absence of a thermostat. To help
1362 establish the range of applicability, the algorithm
1363 is tested on different models of benzene,
1364 cyclohexane, water, and n-hexane. We find that the
1365 algorithm is robust and that the calculated thermal
1366 conductivities are insensitive to variations in its
1367 control parameters. The force field, in contrast,
1368 has a major influence on the value of the thermal
1369 conductivity. While calculated and experimental
1370 thermal conductivities fall into the same order of
1371 magnitude, in most cases the calculated values are
1372 systematically larger. United-atom force fields seem
1373 to do better than all-atom force fields, possibly
1374 because they remove high-frequency degrees of
1375 freedom from the simulation, which, in nature, are
1376 quantum-mechanical oscillators in their ground state
1377 and do not contribute to heat conduction.},
1378 Address = {1155 16TH ST, NW, WASHINGTON, DC 20036 USA},
1379 Affiliation = {Zhang, MM (Reprint Author), Int Univ Bremen, POB 750 561, D-28725 Bremen, Germany. Int Univ Bremen, D-28725 Bremen, Germany. Banco Cent Brasil, Desup, Diesp, BR-01310922 Sao Paulo, Brazil.},
1380 Author = {Zhang, MM and Lussetti, E and de Souza, LES and M\"{u}ller-Plathe, F},
1381 Date-Added = {2009-11-05 18:17:33 -0500},
1382 Date-Modified = {2009-11-05 18:17:33 -0500},
1383 Doc-Delivery-Number = {952YQ},
1384 Doi = {10.1021/jp0512255},
1385 Issn = {1520-6106},
1386 Journal = {J. Phys. Chem. B},
1387 Journal-Iso = {J. Phys. Chem. B},
1388 Keywords-Plus = {LENNARD-JONES LIQUIDS; TRANSPORT-COEFFICIENTS; SWOLLEN POLYMERS; SHEAR VISCOSITY; MODEL SYSTEMS; SIMULATION; BENZENE; FLUIDS; POTENTIALS; DIFFUSION},
1389 Language = {English},
1390 Month = {AUG 11},
1391 Number = {31},
1392 Number-Of-Cited-References = {42},
1393 Pages = {15060-15067},
1394 Publisher = {AMER CHEMICAL SOC},
1395 Subject-Category = {Chemistry, Physical},
1396 Times-Cited = {17},
1397 Title = {Thermal conductivities of molecular liquids by reverse nonequilibrium molecular dynamics},
1398 Type = {Article},
1399 Unique-Id = {ISI:000231042800044},
1400 Volume = {109},
1401 Year = {2005},
1402 Bdsk-Url-1 = {http://dx.doi.org/10.1021/jp0512255%7D}}
1403
1404 @article{ISI:A1997YC32200056,
1405 Abstract = {Equilibrium molecular dynamics simulations have
1406 been carried out in the microcanonical ensemble at
1407 300 and 255 K on the extended simple point charge
1408 (SPC/E) model of water {[}Berendsen et al.,
1409 J. Phys. Chem. 91, 6269 (1987)]. In addition to a
1410 number of static and dynamic properties, thermal
1411 conductivity lambda has been calculated via
1412 Green-Kubo integration of the heat current time
1413 correlation functions (CF's) in the atomic and
1414 molecular formalism, at wave number k=0. The
1415 calculated values (0.67 +/- 0.04 W/mK at 300 K and
1416 0.52 +/- 0.03 W/mK at 255 K) are in good agreement
1417 with the experimental data (0.61 W/mK at 300 K and
1418 0.49 W/mK at 255 K). A negative long-time tail of
1419 the heat current CF, more apparent at 255 K, is
1420 responsible for the anomalous decrease of lambda
1421 with temperature. An analysis of the dynamical modes
1422 contributing to lambda has shown that its value is
1423 due to two low-frequency exponential-like modes, a
1424 faster collisional mode, with positive contribution,
1425 and a slower one, which determines the negative
1426 long-time tail. A comparison of the molecular and
1427 atomic spectra of the heat current CF has suggested
1428 that higher-frequency modes should not contribute to
1429 lambda in this temperature range. Generalized
1430 thermal diffusivity D-T(k) decreases as a function
1431 of k, after an initial minor increase at k =
1432 k(min). The k dependence of the generalized
1433 thermodynamic properties has been calculated in the
1434 atomic and molecular formalisms. The observed
1435 differences have been traced back to intramolecular
1436 or intermolecular rotational effects and related to
1437 the partial structure functions. Finally, from the
1438 results we calculated it appears that the SPC/E
1439 model gives results in better agreement with
1440 experimental data than the transferable
1441 intermolecular potential with four points TIP4P
1442 water model {[}Jorgensen et al., J. Chem. Phys. 79,
1443 926 (1983)], with a larger improvement for, e.g.,
1444 diffusion, viscosities, and dielectric properties
1445 and a smaller one for thermal conductivity. The
1446 SPC/E model shares, to a smaller extent, the
1447 insufficient slowing down of dynamics at low
1448 temperature already found for the TIP4P water
1449 model.},
1450 Address = {ONE PHYSICS ELLIPSE, COLLEGE PK, MD 20740-3844 USA},
1451 Affiliation = {UNIV PISA,DIPARTIMENTO CHIM \& CHIM IND,I-56126 PISA,ITALY. CNR,IST FIS ATOM \& MOL,I-56127 PISA,ITALY.},
1452 Author = {Bertolini, D and Tani, A},
1453 Date-Added = {2009-10-30 15:41:21 -0400},
1454 Date-Modified = {2009-10-30 15:41:21 -0400},
1455 Doc-Delivery-Number = {YC322},
1456 Issn = {1063-651X},
1457 Journal = {Phys. Rev. E},
1458 Journal-Iso = {Phys. Rev. E},
1459 Keywords-Plus = {TIME-CORRELATION-FUNCTIONS; LENNARD-JONES LIQUID; TRANSPORT-PROPERTIES; SUPERCOOLED WATER; DENSITY; SIMULATIONS; RELAXATION; VELOCITY; ELECTRON; FLUIDS},
1460 Language = {English},
1461 Month = {OCT},
1462 Number = {4},
1463 Number-Of-Cited-References = {35},
1464 Pages = {4135-4151},
1465 Publisher = {AMERICAN PHYSICAL SOC},
1466 Subject-Category = {Physics, Fluids \& Plasmas; Physics, Mathematical},
1467 Times-Cited = {18},
1468 Title = {Thermal conductivity of water: Molecular dynamics and generalized hydrodynamics results},
1469 Type = {Article},
1470 Unique-Id = {ISI:A1997YC32200056},
1471 Volume = {56},
1472 Year = {1997}}
1473
1474 @article{Meineke:2005gd,
1475 Abstract = {OOPSE is a new molecular dynamics simulation program
1476 that is capable of efficiently integrating equations
1477 of motion for atom types with orientational degrees
1478 of freedom (e.g. #sticky# atoms and point
1479 dipoles). Transition metals can also be simulated
1480 using the embedded atom method (EAM) potential
1481 included in the code. Parallel simulations are
1482 carried out using the force-based decomposition
1483 method. Simulations are specified using a very
1484 simple C-based meta-data language. A number of
1485 advanced integrators are included, and the basic
1486 integrator for orientational dynamics provides
1487 substantial improvements over older quaternion-based
1488 schemes.},
1489 Address = {111 RIVER ST, HOBOKEN, NJ 07030 USA},
1490 Author = {Meineke, M. A. and Vardeman, C. F. and Lin, T and Fennell, CJ and Gezelter, J. D.},
1491 Date-Added = {2009-10-01 18:43:03 -0400},
1492 Date-Modified = {2010-04-13 09:11:16 -0400},
1493 Doi = {DOI 10.1002/jcc.20161},
1494 Isi = {000226558200006},
1495 Isi-Recid = {142688207},
1496 Isi-Ref-Recids = {67885400 50663994 64190493 93668415 46699855 89992422 57614458 49016001 61447131 111114169 68770425 52728075 102422498 66381878 32391149 134477335 53221357 9929643 59492217 69681001 99223832 142688208 94600872 91658572 54857943 117365867 69323123 49588888 109970172 101670714 142688209 121603296 94652379 96449138 99938010 112825758 114905670 86802042 121339042 104794914 82674909 72096791 93668384 90513335 142688210 23060767 63731466 109033408 76303716 31384453 97861662 71842426 130707771 125809946 66381889 99676497},
1497 Journal = {J. Comp. Chem.},
1498 Keywords = {OOPSE; molecular dynamics},
1499 Month = feb,
1500 Number = {3},
1501 Pages = {252-271},
1502 Publisher = {JOHN WILEY \& SONS INC},
1503 Times-Cited = {9},
1504 Title = {OOPSE: An object-oriented parallel simulation engine for molecular dynamics},
1505 Volume = {26},
1506 Year = {2005},
1507 Bdsk-Url-1 = {http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000226558200006},
1508 Bdsk-Url-2 = {http://dx.doi.org/10.1002/jcc.20161}}
1509
1510 @article{ISI:000080382700030,
1511 Abstract = {A nonequilibrium method for calculating the shear
1512 viscosity is presented. It reverses the
1513 cause-and-effect picture customarily used in
1514 nonequilibrium molecular dynamics: the effect, the
1515 momentum flux or stress, is imposed, whereas the
1516 cause, the velocity gradient or shear rate, is
1517 obtained from the simulation. It differs from other
1518 Norton-ensemble methods by the way in which the
1519 steady-state momentum flux is maintained. This
1520 method involves a simple exchange of particle
1521 momenta, which is easy to implement. Moreover, it
1522 can be made to conserve the total energy as well as
1523 the total linear momentum, so no coupling to an
1524 external temperature bath is needed. The resulting
1525 raw data, the velocity profile, is a robust and
1526 rapidly converging property. The method is tested on
1527 the Lennard-Jones fluid near its triple point. It
1528 yields a viscosity of 3.2-3.3, in Lennard-Jones
1529 reduced units, in agreement with literature
1530 results. {[}S1063-651X(99)03105-0].},
1531 Address = {ONE PHYSICS ELLIPSE, COLLEGE PK, MD 20740-3844 USA},
1532 Affiliation = {Muller-Plathe, F (Reprint Author), Max Planck Inst Polymerforsch, Ackermannweg 10, D-55128 Mainz, Germany. Max Planck Inst Polymerforsch, D-55128 Mainz, Germany.},
1533 Author = {M\"{u}ller-Plathe, F},
1534 Date-Added = {2009-10-01 14:07:30 -0400},
1535 Date-Modified = {2009-10-01 14:07:30 -0400},
1536 Doc-Delivery-Number = {197TX},
1537 Issn = {1063-651X},
1538 Journal = {Phys. Rev. E},
1539 Journal-Iso = {Phys. Rev. E},
1540 Language = {English},
1541 Month = {MAY},
1542 Number = {5, Part A},
1543 Number-Of-Cited-References = {17},
1544 Pages = {4894-4898},
1545 Publisher = {AMERICAN PHYSICAL SOC},
1546 Subject-Category = {Physics, Fluids \& Plasmas; Physics, Mathematical},
1547 Times-Cited = {57},
1548 Title = {Reversing the perturbation in nonequilibrium molecular dynamics: An easy way to calculate the shear viscosity of fluids},
1549 Type = {Article},
1550 Unique-Id = {ISI:000080382700030},
1551 Volume = {59},
1552 Year = {1999}}
1553
1554 @article{Maginn:2007,
1555 Abstract = {Atomistic simulations are conducted to examine the
1556 dependence of the viscosity of
1557 1-ethyl-3-methylimidazolium
1558 bis(trifluoromethanesulfonyl)imide on temperature
1559 and water content. A nonequilibrium molecular
1560 dynamics procedure is utilized along with an
1561 established fixed charge force field. It is found
1562 that the simulations quantitatively capture the
1563 temperature dependence of the viscosity as well as
1564 the drop in viscosity that occurs with increasing
1565 water content. Using mixture viscosity models, we
1566 show that the relative drop in viscosity with water
1567 content is actually less than that that would be
1568 predicted for an ideal system. This finding is at
1569 odds with the popular notion that small amounts of
1570 water cause an unusually large drop in the viscosity
1571 of ionic liquids. The simulations suggest that, due
1572 to preferential association of water with anions and
1573 the formation of water clusters, the excess molar
1574 volume is negative. This means that dissolved water
1575 is actually less effective at lowering the viscosity
1576 of these mixtures when compared to a solute obeying
1577 ideal mixing behavior. The use of a nonequilibrium
1578 simulation technique enables diffusive behavior to
1579 be observed on the time scale of the simulations,
1580 and standard equilibrium molecular dynamics resulted
1581 in sub-diffusive behavior even over 2 ns of
1582 simulation time.},
1583 Address = {1155 16TH ST, NW, WASHINGTON, DC 20036 USA},
1584 Affiliation = {Maginn, EJ (Reprint Author), Univ Notre Dame, Dept Chem \& Biomol Engn, 182 Fitzpatrick Hall, Notre Dame, IN 46556 USA. Univ Notre Dame, Dept Chem \& Biomol Engn, Notre Dame, IN 46556 USA.},
1585 Author = {Kelkar, Manish S. and Maginn, Edward J.},
1586 Author-Email = {ed@nd.edu},
1587 Date-Added = {2009-09-29 17:07:17 -0400},
1588 Date-Modified = {2010-04-14 12:51:02 -0400},
1589 Doc-Delivery-Number = {163VA},
1590 Doi = {10.1021/jp0686893},
1591 Issn = {1520-6106},
1592 Journal = {J. Phys. Chem. B},
1593 Journal-Iso = {J. Phys. Chem. B},
1594 Keywords-Plus = {MOLECULAR-DYNAMICS SIMULATION; MOMENTUM IMPULSE RELAXATION; FORCE-FIELD; TRANSPORT-PROPERTIES; PHYSICAL-PROPERTIES; SIMPLE FLUID; CHLORIDE; MODEL; SALTS; ARCHITECTURE},
1595 Language = {English},
1596 Month = {MAY 10},
1597 Number = {18},
1598 Number-Of-Cited-References = {57},
1599 Pages = {4867-4876},
1600 Publisher = {AMER CHEMICAL SOC},
1601 Subject-Category = {Chemistry, Physical},
1602 Times-Cited = {35},
1603 Title = {Effect of temperature and water content on the shear viscosity of the ionic liquid 1-ethyl-3-methylimidazolium bis(trifluoromethanesulfonyl)imide as studied by atomistic simulations},
1604 Type = {Article},
1605 Unique-Id = {ISI:000246190100032},
1606 Volume = {111},
1607 Year = {2007},
1608 Bdsk-Url-1 = {http://dx.doi.org/10.1021/jp0686893%7D},
1609 Bdsk-Url-2 = {http://dx.doi.org/10.1021/jp0686893}}
1610
1611 @article{MullerPlathe:1997xw,
1612 Abstract = {A nonequilibrium molecular dynamics method for
1613 calculating the thermal conductivity is
1614 presented. It reverses the usual cause and effect
1615 picture. The ''effect,'' the heat flux, is imposed
1616 on the system and the ''cause,'' the temperature
1617 gradient is obtained from the simulation. Besides
1618 being very simple to implement, the scheme offers
1619 several advantages such as compatibility with
1620 periodic boundary conditions, conservation of total
1621 energy and total linear momentum, and the sampling
1622 of a rapidly converging quantity (temperature
1623 gradient) rather than a slowly converging one (heat
1624 flux). The scheme is tested on the Lennard-Jones
1625 fluid. (C) 1997 American Institute of Physics.},
1626 Address = {WOODBURY},
1627 Author = {M\"{u}ller-Plathe, F.},
1628 Cited-Reference-Count = {13},
1629 Date = {APR 8},
1630 Date-Added = {2009-09-21 16:51:21 -0400},
1631 Date-Modified = {2009-09-21 16:51:21 -0400},
1632 Document-Type = {Article},
1633 Isi = {ISI:A1997WR62000032},
1634 Isi-Document-Delivery-Number = {WR620},
1635 Iso-Source-Abbreviation = {J. Chem. Phys.},
1636 Issn = {0021-9606},
1637 Journal = {J. Chem. Phys.},
1638 Language = {English},
1639 Month = {Apr},
1640 Number = {14},
1641 Page-Count = {4},
1642 Pages = {6082--6085},
1643 Publication-Type = {J},
1644 Publisher = {AMER INST PHYSICS},
1645 Publisher-Address = {CIRCULATION FULFILLMENT DIV, 500 SUNNYSIDE BLVD, WOODBURY, NY 11797-2999},
1646 Reprint-Address = {MullerPlathe, F, MAX PLANCK INST POLYMER RES, D-55128 MAINZ, GERMANY.},
1647 Source = {J CHEM PHYS},
1648 Subject-Category = {Physics, Atomic, Molecular & Chemical},
1649 Times-Cited = {106},
1650 Title = {A simple nonequilibrium molecular dynamics method for calculating the thermal conductivity},
1651 Volume = {106},
1652 Year = {1997}}
1653
1654 @article{Muller-Plathe:1999ek,
1655 Abstract = {A novel non-equilibrium method for calculating
1656 transport coefficients is presented. It reverses the
1657 experimental cause-and-effect picture, e.g. for the
1658 calculation of viscosities: the effect, the momentum
1659 flux or stress, is imposed, whereas the cause, the
1660 velocity gradient or shear rates, is obtained from
1661 the simulation. It differs from other
1662 Norton-ensemble methods by the way, in which the
1663 steady-state fluxes are maintained. This method
1664 involves a simple exchange of particle momenta,
1665 which is easy to implement and to analyse. Moreover,
1666 it can be made to conserve the total energy as well
1667 as the total linear momentum, so no thermostatting
1668 is needed. The resulting raw data are robust and
1669 rapidly converging. The method is tested on the
1670 calculation of the shear viscosity, the thermal
1671 conductivity and the Soret coefficient (thermal
1672 diffusion) for the Lennard-Jones (LJ) fluid near its
1673 triple point. Possible applications to other
1674 transport coefficients and more complicated systems
1675 are discussed. (C) 1999 Elsevier Science Ltd. All
1676 rights reserved.},
1677 Address = {THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND},
1678 Author = {M\"{u}ller-Plathe, F and Reith, D},
1679 Date-Added = {2009-09-21 16:47:07 -0400},
1680 Date-Modified = {2009-09-21 16:47:07 -0400},
1681 Isi = {000082266500004},
1682 Isi-Recid = {111564960},
1683 Isi-Ref-Recids = {64516210 89773595 53816621 60134000 94875498 60964023 90228608 85968509 86405859 63979644 108048497 87560156 577165 103281654 111564961 83735333 99953572 88476740 110174781 111564963 6599000 75892253},
1684 Journal = {Computational and Theoretical Polymer Science},
1685 Keywords = {viscosity; Ludwig-Soret effect; thermal conductivity; Onsager coefficents; non-equilibrium molecular dynamics},
1686 Number = {3-4},
1687 Pages = {203-209},
1688 Publisher = {ELSEVIER SCI LTD},
1689 Times-Cited = {15},
1690 Title = {Cause and effect reversed in non-equilibrium molecular dynamics: an easy route to transport coefficients},
1691 Volume = {9},
1692 Year = {1999},
1693 Bdsk-Url-1 = {http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000082266500004}}
1694
1695 @article{Viscardy:2007lq,
1696 Abstract = {The thermal conductivity is calculated with the
1697 Helfand-moment method in the Lennard-Jones fluid
1698 near the triple point. The Helfand moment of thermal
1699 conductivity is here derived for molecular dynamics
1700 with periodic boundary conditions. Thermal
1701 conductivity is given by a generalized Einstein
1702 relation with this Helfand moment. The authors
1703 compute thermal conductivity by this new method and
1704 compare it with their own values obtained by the
1705 standard Green-Kubo method. The agreement is
1706 excellent. (C) 2007 American Institute of Physics.},
1707 Address = {CIRCULATION \& FULFILLMENT DIV, 2 HUNTINGTON QUADRANGLE, STE 1 N O 1, MELVILLE, NY 11747-4501 USA},
1708 Author = {Viscardy, S. and Servantie, J. and Gaspard, P.},
1709 Date-Added = {2009-09-21 16:37:20 -0400},
1710 Date-Modified = {2010-07-19 16:18:44 -0400},
1711 Doi = {DOI 10.1063/1.2724821},
1712 Isi = {000246453900035},
1713 Isi-Recid = {156192451},
1714 Isi-Ref-Recids = {18794442 84473620 156192452 41891249 90040203 110174972 59859940 47256160 105716249 91804339 93329429 95967319 6199670 1785176 105872066 6325196 65361295 71941152 4307928 23120502 54053395 149068110 4811016 99953572 59859908 132156782 156192449},
1715 Journal = {J. Chem. Phys.},
1716 Month = may,
1717 Number = {18},
1718 Pages = {184513},
1719 Publisher = {AMER INST PHYSICS},
1720 Times-Cited = {3},
1721 Title = {Transport and Helfand moments in the Lennard-Jones fluid. II. Thermal conductivity},
1722 Volume = {126},
1723 Year = {2007},
1724 Bdsk-Url-1 = {http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000246453900035},
1725 Bdsk-Url-2 = {http://dx.doi.org/10.1063/1.2724821}}
1726
1727 @article{Viscardy:2007bh,
1728 Abstract = {The authors propose a new method, the Helfand-moment
1729 method, to compute the shear viscosity by
1730 equilibrium molecular dynamics in periodic
1731 systems. In this method, the shear viscosity is
1732 written as an Einstein-type relation in terms of the
1733 variance of the so-called Helfand moment. This
1734 quantity is modified in order to satisfy systems
1735 with periodic boundary conditions usually considered
1736 in molecular dynamics. They calculate the shear
1737 viscosity in the Lennard-Jones fluid near the triple
1738 point thanks to this new technique. They show that
1739 the results of the Helfand-moment method are in
1740 excellent agreement with the results of the standard
1741 Green-Kubo method. (C) 2007 American Institute of
1742 Physics.},
1743 Address = {CIRCULATION \& FULFILLMENT DIV, 2 HUNTINGTON QUADRANGLE, STE 1 N O 1, MELVILLE, NY 11747-4501 USA},
1744 Author = {Viscardy, S. and Servantie, J. and Gaspard, P.},
1745 Date-Added = {2009-09-21 16:37:19 -0400},
1746 Date-Modified = {2010-07-19 16:19:03 -0400},
1747 Doi = {DOI 10.1063/1.2724820},
1748 Isi = {000246453900034},
1749 Isi-Recid = {156192449},
1750 Isi-Ref-Recids = {18794442 89109900 84473620 86837966 26564374 23367140 83161139 75750220 90040203 110174972 5885 67722779 91461489 42484251 77907850 93329429 95967319 105716249 6199670 1785176 105872066 6325196 129596740 120782555 51131244 65361295 41141868 4307928 21555860 23120502 563068 120721875 142813985 135942402 4811016 86224873 57621419 85506488 89860062 44796632 51381285 132156779 156192450 132156782 156192451},
1751 Journal = {J. Chem. Phys.},
1752 Month = may,
1753 Number = {18},
1754 Pages = {184512},
1755 Publisher = {AMER INST PHYSICS},
1756 Times-Cited = {1},
1757 Title = {Transport and Helfand moments in the Lennard-Jones fluid. I. Shear viscosity},
1758 Volume = {126},
1759 Year = {2007},
1760 Bdsk-Url-1 = {http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000246453900034},
1761 Bdsk-Url-2 = {http://dx.doi.org/10.1063/1.2724820}}
1762
1763 @inproceedings{384119,
1764 Address = {New York, NY, USA},
1765 Author = {Fortune, Steven},
1766 Booktitle = {ISSAC '01: Proceedings of the 2001 international symposium on Symbolic and algebraic computation},
1767 Doi = {http://doi.acm.org/10.1145/384101.384119},
1768 Isbn = {1-58113-417-7},
1769 Location = {London, Ontario, Canada},
1770 Pages = {121--128},
1771 Publisher = {ACM},
1772 Title = {Polynomial root finding using iterated Eigenvalue computation},
1773 Year = {2001},
1774 Bdsk-Url-1 = {http://doi.acm.org/10.1145/384101.384119}}
1775
1776 @article{Fennell06,
1777 Author = {C.~J. Fennell and J.~D. Gezelter},
1778 Date-Added = {2006-08-24 09:49:57 -0400},
1779 Date-Modified = {2006-08-24 09:49:57 -0400},
1780 Doi = {10.1063/1.2206581},
1781 Journal = {J. Chem. Phys.},
1782 Number = {23},
1783 Pages = {234104(12)},
1784 Rating = {5},
1785 Read = {Yes},
1786 Title = {Is the \uppercase{E}wald summation still necessary? \uppercase{P}airwise alternatives to the accepted standard for long-range electrostatics},
1787 Volume = {124},
1788 Year = {2006},
1789 Bdsk-Url-1 = {http://dx.doi.org/10.1063/1.2206581}}
1790
1791 @book{Sommese2005,
1792 Address = {Singapore},
1793 Author = {Andrew J. Sommese and Charles W. Wampler},
1794 Publisher = {World Scientific Press},
1795 Title = {The numerical solution of systems of polynomials arising in engineering and science},
1796 Year = 2005}