Fattebert J-L, Law R J, Bennion B, Lau E Y, Schwegler E, Lightstone F C
Center for Applied Scientific Computing, and Physical & Life Sciences, Lawrence Livermore National Laboratory, Livermore, California 94551.
J Chem Theory Comput. 2009 Sep 8;5(9):2257-64. doi: 10.1021/ct900209y.
We evaluate the accuracy of density functional theory quantum calculations of biomolecular subsystems using a simple electrostatic embedding scheme. Our scheme is based on dividing the system of interest into a primary and secondary subsystem. A finite difference discretization of the Kohn-Sham equations is used for the primary subsystem, while its electrostatic environment is modeled with a simple one-electron potential. Force-field atomic partial charges are used to generate smeared Gaussian charge densities and to model the secondary subsystem. We illustrate the utility of this approach with calculations of truncated dipeptide chains. We analyze quantitatively the accuracy of this approach by calculating atomic forces and comparing results with full QM calculations. The impact of the choice made in terminating dangling bonds at the frontier of the QM region is also investigated.
我们使用一种简单的静电嵌入方案来评估生物分子子系统密度泛函理论量子计算的准确性。我们的方案基于将感兴趣的系统划分为主要子系统和次要子系统。对主要子系统使用Kohn-Sham方程的有限差分离散化,而其静电环境则用一个简单的单电子势来建模。使用力场原子部分电荷来生成涂抹的高斯电荷密度并对次要子系统进行建模。我们通过对截短的二肽链进行计算来说明这种方法的实用性。我们通过计算原子力并将结果与完整的量子力学计算进行比较,定量分析这种方法的准确性。还研究了在量子力学区域边界处终止悬键时所做选择的影响。