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# Content
1 \documentclass[11pt,aps]{revtex4}
2
3 \usepackage{berkeley}
4 %%\usepackage{graphicx}
5 %%\usepackage{color}
6 %%\usepackage{floatflt}
7 \usepackage{amsmath}
8 \usepackage{amssymb}
9 %%\usepackage{subfigure}
10 %%\usepackage{palatino}
11 %%\usepackage[ref]{overcite}
12
13
14
15
16 \begin{document}
17
18
19 \title{A Mesoscale Model for Phospholipid Simulations}
20
21 \author{\underline{Matthew A.~Meineke}}
22 \author{J.~Daniel Gezelter}
23 \affiliation{Department of Chemistry and Biochemistry\\
24 University of Notre Dame\\
25 Notre Dame, Indiana 46556}
26
27 \date{\today}
28
29 \maketitle
30
31 A mesoscale model for phospholipids has been developed for molecular
32 dynamics simulations of lipid bilayers. The model makes several
33 simplifications to both the water and the phospholipids to reduce the
34 computational cost of each force evaluation. The water was represented
35 by the soft sticky dipole model of Ichiye \emph{et
36 al}.\cite{liu96:new_model,liu96:monte_carlo,chandra99:ssd_md} The
37 simplifications to the phospholipids included the reduction of atoms
38 in the tail groups to beads representing $\mbox{CH}_{2}$ and
39 $\mbox{CH}_{3}$ unified atoms, and the replacement of the head groups
40 with a single point mass containing a centrally located dipole. The
41 model was then used to simulate micelle and bilayer formation from a
42 configuration of randomly placed phospholipids which was simulated for
43 times in excess of 30 nanoseconds.
44
45 \bibliography{abstract}
46 \end{document}