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Revision 740 by mmeineke, Tue Sep 2 18:40:47 2003 UTC vs.
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# Line 2 | Line 2 | The \underline{D}ipolar \underline{U}nified-Atom
2   \section{\label{sec:DUFF}Dipolar Unified-Atom Force Field}
3  
4   The \underline{D}ipolar \underline{U}nified-Atom
5 < \underline{F}orce \underline{F}ield (DUFF) was developed to
5 > \underline{F}orce \underline{F}ield ({\sc duff}) was developed to
6   simulate lipid bilayers. We needed a model capable of forming
7   bilayers, while still being sufficiently computationally efficient to
8   allow simulations of large systems ($\approx$100's of phospholipids,
# Line 17 | Line 17 | As an example, lipid head groups in DUFF are represent
17   computationally expensive Ewald-Sum. Instead, we can use
18   neighbor-lists and cutoff radii for the dipolar interactions.
19  
20 < As an example, lipid head groups in DUFF are represented as point
20 > As an example, lipid head groups in {\sc duff} are represented as point
21   dipole interaction sites.PC and PE Lipid head groups are typically
22   zwitterionic in nature, with charges separated by as much as
23   6~$\mbox{\AA}$. By placing a dipole of 20.6~Debye at the head group
# Line 27 | Line 27 | atom in Fig.~\ref{fig:lipidModel}.
27   atom in Fig.~\ref{fig:lipidModel}.
28  
29   \begin{figure}
30 < \includegraphics[angle=-90,width=\linewidth]{lipidModel.epsi}
30 > \epsfxsize=6in
31 > \epsfbox{lipidModel.epsi}
32   \caption{A representation of the lipid model. $\phi$ is the torsion angle, $\theta$ %
33   is the bend angle, $\mu$ is the dipole moment of the head group, and n is the chain length.}
34   \label{fig:lipidModel}
# Line 66 | Line 67 | used when integrating the equations of motion.
67   used when integrating the equations of motion.
68  
69  
70 < \subsection{\label{subSec:energyFunctions}DUFF Energy Functions}
70 > \subsection{\label{subSec:energyFunctions}{\sc duff} Energy Functions}
71  
72 < The total energy of function in DUFF is given by the following:
72 > The total energy of function in {\sc duff} is given by the following:
73   \begin{equation}
74   V_{\text{Total}} = \sum^{N}_{I=1} V^{I}_{\text{Internal}}
75          + \sum^{N}_{I=1} \sum^{N}_{J=1} V^{IJ}_{\text{Cross}}

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