git-svn-id: svn://svn.icms.temple.edu/lammps-ro/trunk@14944 f3b2605a-c512-4ea7-a41b-209d697bcdaa

This commit is contained in:
sjplimp 2016-05-09 16:51:41 +00:00
parent f298c34a4b
commit b58cc3e832
508 changed files with 0 additions and 3015 deletions

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\documentclass[12pt]{article}
\begin{document}
$$
E = K (\theta - \theta_0)^2 + K_{UB} (r - r_{UB})^2
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
\begin{eqnarray*}
E & = & E_a + E_{bb} + E_{ba} \\
E_a & = & K_2 (\theta - \theta_0)^2 + K_3 (\theta - \theta_0)^3 + K_4 (\theta - \theta_0)^4 \\
E_{bb} & = & M (r_{ij} - r_1) (r_{jk} - r_2) \\
E_{ba} & = & N_1 (r_{ij} - r_1) (\theta - \theta_0) + N_2 (r_{jk} - r_2) (\theta - \theta_0)
\end{eqnarray*}
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = K [1 + \cos(\theta)]
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = K [1 - \cos(\theta - \theta_0)]
$$
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
$$
E=C\left[ 1-B(-1)^ncos\left( n\theta\right) \right]
$$
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
$$
E=-\frac{Umin}{2} \left[ 1+Cos(\theta-\theta_0) \right]
$$
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
$$
E=-U_{min}
\frac{e^{-a U(\theta,\theta_0)}-1}{e^a-1}
\quad\mbox{with}\quad
U(\theta,\theta_0)
=-0.5 \left(1+\cos(\theta-\theta_0) \right)
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = K [\cos(\theta) - \cos(\theta_0)]^2
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
\begin{eqnarray*}
-\vec{T_j} & = & \vec{r_{ij}} \times \vec{F_i}\\
\vec{F_j} & = & -\vec{F_i} \\
\end{eqnarray*}
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
\cos\gamma = \frac{\vec{\mu_j}\bullet\vec{r_{ij}}}{\mu_j\,r_{ij}}
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = K (\cos\gamma - \cos\gamma_0)^2
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
\vec{T_j} = \frac{2K(\cos\gamma - \cos\gamma_0)}{\mu_j\,r_{ij}}\,
\vec{r_{ij}} \times \vec{\mu_j}
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = K [C_0 + C_1 \cos ( \theta) + C_2 \cos( 2 \theta) ]
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = K [ 1.0 + c \cos ( n \theta) ]
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = K (\theta - \theta_0)^2
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = K_2 (\theta - \theta_0)^2 + K_3 (\theta - \theta_0)^3 + K_4 (\theta - \theta_0)^4
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = K_2 (r - r_0)^2 + K_3 (r - r_0)^3 + K_4 (r - r_0)^4
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = -0.5 K R_0^2 \ln \left[ 1 - \left(\frac{r}{R_0}\right)^2\right] +
4 \epsilon \left[ \left(\frac{\sigma}{r}\right)^{12} -
\left(\frac{\sigma}{r}\right)^6 \right] + \epsilon
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = -0.5 K R_0^2
\ln \left[1 -\left( \frac{\left(r - \Delta\right)}{R_0}\right)^2 \right] +
4 \epsilon \left[ \left(\frac{\sigma}{\left(r -
\Delta\right)}\right)^{12} - \left(\frac{\sigma}{\left(r -
\Delta\right)}\right)^6 \right] + \epsilon
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = K (r - r_0)^2
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = \frac{Umin}{(r_0-r_c)^2} \left[ (r-r_0)^2-(r_c-r_0)^2 \right]
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = \frac{Umin}{(r_0-r_c)^2} \left[ (r-r_0)^2-(r_c-r_0)^2 \right]
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
% E = D \left[ 1 - \exp \left( -\alpha (r - r_0) \right) \right]^2
E = D \left[ 1 - e^{-\alpha (r - r_0)} \right]^2
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = \frac{\epsilon (r - r_0)^2}{ [ \lambda^2 - (r - r_0)^2 ]}
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
E = K (r - R_c)^ 2 (r - R_c - B_1) (r - R_c - B_2) + U_0 +
4 \epsilon \left[ \left(\frac{\sigma}{r}\right)^{12} -
\left(\frac{\sigma}{r}\right)^6 \right] + \epsilon
$$
\end{document}

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\documentclass[12pt]{article}
\begin{document}
\begin{eqnarray*}
a &=& {\rm lx} \\
b^2 &=& {\rm ly}^2 + {\rm xy}^2 \\
c^2 &=& {\rm lz}^2 + {\rm xz}^2 + {\rm yz}^2 \\
\cos{\alpha} &=& \frac{{\rm xy}*{\rm xz} + {\rm ly}*{\rm yz}}{b*c} \\
\cos{\beta} &=& \frac{\rm xz}{c} \\
\cos{\gamma} &=& \frac{\rm xy}{b} \\
\end{eqnarray*}
\end{document}

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\documentclass[12pt]{article}
\begin{document}
\begin{eqnarray*}
{\rm lx} &=& a \\
{\rm xy} &=& b \cos{\gamma} \\
{\rm xz} &=& c \cos{\beta}\\
{\rm ly}^2 &=& b^2 - {\rm xy}^2 \\
{\rm yz} &=& \frac{b*c \cos{\alpha} - {\rm xy}*{\rm xz}}{\rm ly} \\
{\rm lz}^2 &=& c^2 - {\rm xz}^2 - {\rm yz}^2 \\
\end{eqnarray*}
\end{document}

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\documentclass[12pt]{article}
\begin{document}
$$
CS = \sum_{i = 1}^{N/2} | \vec{R}_i + \vec{R}_{i+N/2} |^2
$$
\end{document}

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\documentclass[12pt,article]{article}
\usepackage{indentfirst}
\usepackage{amsmath}
\begin{document}
\begin{eqnarray*}
r_{c}^{fcc} & = & \frac{1}{2} \left(\frac{\sqrt{2}}{2} + 1\right) \mathrm{a} \simeq 0.8536 \:\mathrm{a} \\
r_{c}^{bcc} & = & \frac{1}{2}(\sqrt{2} + 1) \mathrm{a} \simeq 1.207 \:\mathrm{a} \\
r_{c}^{hcp} & = & \frac{1}{2}\left(1+\sqrt{\frac{4+2x^{2}}{3}}\right) \mathrm{a}
\end{eqnarray*}
\end{document}

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\documentclass[12pt,article]{article}
\usepackage{indentfirst}
\usepackage{amsmath}
\begin{document}
$$
Rc + Rs > 2*{\rm cutoff}
$$
\end{document}

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\documentstyle[12pt]{article}
\pagestyle{empty}
\begin{document}
\begin{eqnarray*}
U^{cond} = \displaystyle\sum_{i=1}^{N} u_{i}^{cond} \\
U^{mech} = \displaystyle\sum_{i=1}^{N} u_{i}^{mech} \\
U = \displaystyle\sum_{i=1}^{N} (u_{i}^{cond} + u_{i}^{mech}) \\
\theta_{avg} = (\frac{1}{N}\displaystyle\sum_{i=1}^{N} \frac{1}{\theta_{i}})^{-1} \\
\end{eqnarray*}
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
\[ \left< \frac{1}{1 + \exp\left[\left(U_1 - U_0 - \Delta_0^1A \right) /kT \right]} \right>_0 = \left< \frac{1}{1 + \exp\left[\left(U_0 - U_1 + \Delta_0^1A \right) /kT \right]} \right>_1 \]
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
\[ \Delta_0^1 A = \int_{\lambda=0}^{\lambda=1} \left( \frac{\partial
A(\lambda)}{\partial\lambda} \right)_\lambda \mathrm{d}\lambda
\approx \sum_{i=0}^{n-1} w_i \frac{A(\lambda_{i} + \delta) -
A(\lambda_i)}{\delta} \]
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
\[ \Delta_0^1 A = \sum_{i=0}^{n-1} \Delta_{\lambda_i}^{\lambda_{i+1}} A =
- kT \sum_{i=0}^{n-1} \ln \left< \exp \left( - \frac{U(\lambda_{i+1}) -
U(\lambda_i)}{kT} \right) \right>_{\lambda_i} \]
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
\begin{eqnarray*}
\lambda = 0 \quad\Rightarrow\quad U = U_{\mathrm{bg}} + U_0 \\
\lambda = 1 \quad\Rightarrow\quad U = U_{\mathrm{bg}} + U_1
\end{eqnarray*}
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
\[ \Delta_0^1 A = \int_{\lambda=0}^{\lambda=1} \left< \frac{\partial
U(\lambda)}{\partial\lambda} \right>_\lambda \mathrm{d}\lambda
\approx \sum_{i=0}^{n-1} w_i \left< \frac{U(\lambda_{i} + \delta) -
U(\lambda_i)}{\delta} \right>_{\lambda_i} \]
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
\[ U(\lambda) = U_{\mathrm{bg}} + U_1(\lambda) + U_0(\lambda) \]
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
\[ \Delta_0^1 A = - kT \sum_{i=0}^{n-1} \ln \frac{\left< V \exp \left( -
\frac{U(\lambda_{i+1}) - U(\lambda_i)}{kT} \right)
\right>_{\lambda_i}}{\left< V \right>_{\lambda_i}} \]
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
$$
{R_g}^2 = \frac{1}{M} \sum_i m_i (r_i - r_{cm})^2
$$
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
$$
NGP(t) = 3<(r(t)-r(0))^4>/(5<(r(t)-r(0))^2>^2) - 1
$$
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
$$
I=\frac{F^{*}F}{N}
$$
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
$$
F(\mathbf{k})=\sum_{j=1}^{N}f_j(\theta)exp(2\pi i \mathbf{k}\cdot \mathbf{r}_j)
$$
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
$$
f_j\left ( \frac{sin(\theta)}{\lambda} \right )=\sum_{i}^{5}
a_i exp\left ( -b_i \frac{sin^{2}(\theta)}{\lambda^{2}} \right )
$$
\end{document}

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\documentclass[24pt]{article}
\pagestyle{empty}
\begin{document}
\begin{eqnarray*}
\theta_0 = {\tt rfac0} \frac{r-r_{min0}}{R_{ii'}-r_{min0}} \pi
\end{eqnarray*}
\end{document}

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\documentclass[24pt]{article}
\pagestyle{empty}
\begin{document}
\begin{eqnarray*}
u^j_{m,m'} = U^j_{m,m'}(0,0,0) + \sum_{r_{ii'} < R_{ii'}}{f_c(r_{ii'}) w_{i'} U^j_{m,m'}(\theta_0,\theta,\phi)}
\end{eqnarray*}
\end{document}

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\documentclass[24pt]{article}
\pagestyle{empty}
\begin{document}
\newcommand{\hcoeff}[9]{H\!\!{\tiny\begin{array}{l}#1 #2 #3 \\ #4 #5 #6 \\ #7 #8 #9 \end{array}}}
\begin{equation}
B_{j_1,j_2,j} = \\
\sum_{m_1,m'_1=-j_1}^{j_1}\sum_{m_2,m'_2=-j_2}^{j_2}\sum_{m,m'=-j}^{j} (u^j_{m,m'})^*
\hcoeff{j}{m}{m'}{j_1}{\!m_1}{\!m'_1}{j_2}{m_2}{m'_2}
u^{j_1}_{m_1,m'_1} u^{j_2}_{m_2,m'_2}
\end{equation}
\end{document}

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\documentclass[24pt]{article}
\pagestyle{empty}
\begin{document}
\begin{eqnarray*}
\label{eqn:f_c}
f_c(r) & = & \frac{1}{2}(\cos(\pi \frac{r-r_{min0}}{R_{ii'}-r_{min0}}) + 1), r \leq R_{ii'} \\
& = & 0, r > R_{ii'}
\end{eqnarray*}
\end{document}

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\documentclass[24pt]{article}
\pagestyle{empty}
\begin{document}
\begin{equation}
- \sum_{i' \in I} \frac{\partial {B^{i'}_{j_1,j_2,j} }}{\partial {\bf r}_i}
\end{equation}
\end{document}

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\documentclass[24pt]{article}
\pagestyle{empty}
\begin{document}
\begin{eqnarray*}
- {\bf r}_i \otimes \sum_{i' \in I} \frac{\partial {B^{i'}_{j_1,j_2,j}}}{\partial {\bf r}_i}
\end{eqnarray*}
\end{document}

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\documentstyle[12pt]{article}
\begin{document}
$$
I=Lp(\theta)\frac{F^{*}F}{N}
$$
\end{document}

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