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Revision 2669 by gezelter, Fri Mar 24 16:54:13 2006 UTC vs.
Revision 2740 by chrisfen, Wed Apr 26 14:20:17 2006 UTC

# Line 1 | Line 1
1   %\documentclass[prb,aps,twocolumn,tabularx]{revtex4}
2   %\documentclass[aps,prb,preprint]{revtex4}
3 < \documentclass[11pt]{article}
4 < \usepackage{endfloat}
3 > \documentclass[10pt]{article}
4 > %\usepackage{endfloat}
5   \usepackage{amsmath,bm}
6   \usepackage{amssymb}
7   \usepackage{epsf}
# Line 38 | Line 38 | Notre Dame, Indiana 46556}
38   \date{\today}
39  
40   \maketitle
41 < \doublespacing
41 > %\doublespacing
42  
43   \begin{abstract}
44   We investigate pairwise electrostatic interaction methods and show
# Line 106 | Line 106 | or which have one- or two-dimensional periodicity.  Be
106   to the direct pairwise sum.  They also lack the added periodicity of
107   the Ewald sum, so they can be used for systems which are non-periodic
108   or which have one- or two-dimensional periodicity.  Below, these
109 < methods are evaluated using a variety of model systems to establish
110 < their usability in molecular simulations.
109 > methods are evaluated using a variety of model systems to
110 > establish their usability in molecular simulations.
111  
112   \subsection{The Ewald Sum}
113   The complete accumulation of the electrostatic interactions in a system with
# Line 201 | Line 201 | can prove problematic.  The Ewald sum has been reformu
201   interfaces and membranes, the intrinsic three-dimensional periodicity
202   can prove problematic.  The Ewald sum has been reformulated to handle
203   2D systems,\cite{Parry75,Parry76,Heyes77,deLeeuw79,Rhee89}, but the
204 < new methods are computationally expensive.\cite{Spohr97,Yeh99}
205 < Inclusion of a correction term in the Ewald summation is a possible
206 < direction for handling 2D systems while still enabling the use of the
207 < modern optimizations.\cite{Yeh99}
204 > new methods are computationally expensive.\cite{Spohr97,Yeh99} More
205 > recently, there have been several successful efforts toward reducing
206 > the computational cost of 2D lattice summations, often enabling the
207 > use of the mentioned
208 > optimizations.\cite{Yeh99,Kawata01,Arnold02,deJoannis02,Brodka04}
209  
210   Several studies have recognized that the inherent periodicity in the
211   Ewald sum can also have an effect on three-dimensional
# Line 530 | Line 531 | Fig. \ref{fig:linearFit}.
531  
532   \begin{figure}
533   \centering
534 < \includegraphics[width = \linewidth]{./dualLinear.pdf}
534 > \includegraphics[width = 3.25in]{./dualLinear.pdf}
535   \caption{Example least squares regressions of the configuration energy
536   differences for SPC/E water systems. The upper plot shows a data set
537   with a poor correlation coefficient ($R^2$), while the lower plot
# Line 538 | Line 539 | shows a data set with a good correlation coefficient.}
539   \label{fig:linearFit}
540   \end{figure}
541  
542 < Each system type (detailed in section \ref{sec:RepSims}) was
543 < represented using 500 independent configurations.  Additionally, we
544 < used seven different system types, so each of the alternative
545 < (non-Ewald) electrostatic summation methods was evaluated using
546 < 873,250 configurational energy differences.
542 > Each of the seven system types (detailed in section \ref{sec:RepSims})
543 > were represented using 500 independent configurations.  Thus, each of
544 > the alternative (non-Ewald) electrostatic summation methods was
545 > evaluated using an accumulated 873,250 configurational energy
546 > differences.
547  
548   Results and discussion for the individual analysis of each of the
549   system types appear in the supporting information, while the
# Line 621 | Line 622 | were performed under the microcanonical ensemble, and
622   NaCl crystal is composed of two different atom types, the average of
623   the two resulting power spectra was used for comparisons. Simulations
624   were performed under the microcanonical ensemble, and velocity
625 < information was saved every 5 fs over 100 ps trajectories.
625 > information was saved every 5~fs over 100~ps trajectories.
626  
627   \subsection{Representative Simulations}\label{sec:RepSims}
628 < A variety of representative simulations were analyzed to determine the
629 < relative effectiveness of the pairwise summation techniques in
630 < reproducing the energetics and dynamics exhibited by {\sc spme}.  We wanted
631 < to span the space of modern simulations (i.e. from liquids of neutral
632 < molecules to ionic crystals), so the systems studied were:
628 > A variety of representative molecular simulations were analyzed to
629 > determine the relative effectiveness of the pairwise summation
630 > techniques in reproducing the energetics and dynamics exhibited by
631 > {\sc spme}.  We wanted to span the space of typical molecular
632 > simulations (i.e. from liquids of neutral molecules to ionic
633 > crystals), so the systems studied were:
634   \begin{enumerate}
635   \item liquid water (SPC/E),\cite{Berendsen87}
636   \item crystalline water (Ice I$_\textrm{c}$ crystals of SPC/E),
# Line 715 | Line 717 | figure \ref{fig:delE}.
717  
718   \begin{figure}
719   \centering
720 < \includegraphics[width=5.5in]{./delEplot.pdf}
720 > \includegraphics[width=3.25in]{./delEplot.pdf}
721   \caption{Statistical analysis of the quality of configurational energy
722   differences for a given electrostatic method compared with the
723   reference Ewald sum.  Results with a value equal to 1 (dashed line)
# Line 775 | Line 777 | accumulation of the statistics from all of the system
777  
778   \begin{figure}
779   \centering
780 < \includegraphics[width=5.5in]{./frcMagplot.pdf}
780 > \includegraphics[width=3.25in]{./frcMagplot.pdf}
781   \caption{Statistical analysis of the quality of the force vector
782   magnitudes for a given electrostatic method compared with the
783   reference Ewald sum.  Results with a value equal to 1 (dashed line)
# Line 814 | Line 816 | performs more favorably.
816  
817   \begin{figure}
818   \centering
819 < \includegraphics[width=5.5in]{./trqMagplot.pdf}
819 > \includegraphics[width=3.25in]{./trqMagplot.pdf}
820   \caption{Statistical analysis of the quality of the torque vector
821   magnitudes for a given electrostatic method compared with the
822   reference Ewald sum.  Results with a value equal to 1 (dashed line)
# Line 854 | Line 856 | distributions of the combined set over all system type
856  
857   \begin{figure}
858   \centering
859 < \includegraphics[width=5.5in]{./frcTrqAngplot.pdf}
859 > \includegraphics[width=3.25in]{./frcTrqAngplot.pdf}
860   \caption{Statistical analysis of the width of the angular distribution
861   that the force and torque vectors from a given electrostatic method
862   make with their counterparts obtained using the reference Ewald sum.
# Line 989 | Line 991 | low-frequency portion of the power spectrum.
991  
992   \begin{figure}
993   \centering
994 < \includegraphics[width = \linewidth]{./vCorrPlot.pdf}
994 > \includegraphics[width = 3.25in]{./vCorrPlot.pdf}
995   \caption{Velocity autocorrelation functions of NaCl crystals at
996   1000 K using {\sc spme}, {\sc sf} ($\alpha$ = 0.0, 0.1, \& 0.2), and {\sc
997   sp} ($\alpha$ = 0.2). The inset is a magnification of the area around
# Line 1029 | Line 1031 | noticeable effect on peak location or magnitude.
1031  
1032   \begin{figure}
1033   \centering
1034 < \includegraphics[width = \linewidth]{./spectraSquare.pdf}
1034 > \includegraphics[width = 3.25in]{./spectraSquare.pdf}
1035   \caption{Power spectra obtained from the velocity auto-correlation
1036   functions of NaCl crystals at 1000 K while using {\sc spme}, {\sc sf}
1037   ($\alpha$ = 0, 0.1, \& 0.2), and {\sc sp} ($\alpha$ = 0.2).  The inset
# Line 1068 | Line 1070 | cutoff distance.
1070  
1071   \begin{figure}
1072   \centering
1073 < \includegraphics[width = \linewidth]{./increasedDamping.pdf}
1073 > \includegraphics[width = 3.25in]{./increasedDamping.pdf}
1074   \caption{Effect of damping on the two lowest-frequency phonon modes in
1075   the NaCl crystal at 1000~K.  The undamped shifted force ({\sc sf})
1076   method is off by less than 10 cm$^{-1}$, and increasing the

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