Thermodynamic integration: Difference between revisions

Revision as of 11:35, 23 February 2007

Used to calculate the free energy difference between two states. The path must be continuous and reversible. One has a continuously variable energy function $U_{\lambda }$ such that $\lambda =0$ , $U_{\lambda }=U_{0}$ and $\lambda =1$ , $U_{\lambda }=U$

\Delta A=A-A_{0}=\int _{0}^{1}d\lambda \langle {\frac {\partial U_{\lambda }}{\partial \lambda }}\rangle _{\lambda }

\left.U_{\lambda }\right.=(1-\lambda )U_{0}+\lambda U

@@ Line 2: / Line 2: @@
 The path must be ''continuous'' and ''reversible''.
 One has a  continuously variable energy function <math>U_\lambda</math> such that
-<math>\lambda=0</math>,  <math>U_\lambda=U_0</math>
+<math>\lambda=0</math>,  <math>U_\lambda=U_0</math> and <math>\lambda=1</math>, <math>U_\lambda=U</math>
-and
-<math>\lambda=1</math>, <math>U_\lambda=U</math>
-<math>\Delta A = A - A_0 = \int_0^1 d\lambda  <\frac{\partial U_\lambda}{\partial \lambda}>_{\lambda}</math>
+:<math>\Delta A = A - A_0 = \int_0^1 d\lambda  \langle\frac{\partial U_\lambda}{\partial \lambda}\rangle_{\lambda}</math>
+:<math>\left.U_\lambda\right.=(1-\lambda)U_0 + \lambda U</math>
-<math>U_\lambda=(1-\lambda)U_0 + \lambda U</math>

Thermodynamic integration: Difference between revisions

Revision as of 11:35, 23 February 2007

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