Misquitta Alston J, Szalewicz Krzysztof
Department of Physics and Astronomy, University of Delaware, Newark, Delaware 19716, USA.
J Chem Phys. 2005 Jun 1;122(21):214109. doi: 10.1063/1.1924593.
A symmetry-adapted perturbation theory based on Kohn-Sham determinants [SAPT(KS)] and utilizing asymptotically corrected exchange-correlation potentials has been applied to the He2, Ne2, (H2O)2, and (CO2)2 dimers. It is shown that SAPT(KS) is able to recover the electrostatic, first-order exchange, second-order induction, and exchange-induction energies with an accuracy approaching and occasionally surpassing that of regular SAPT at the currently programmed theory level. The use of the asymptotic corrections is critical to achieve this accuracy. The SAPT(KS) results can be obtained at a small fraction of the time needed for regular SAPT calculations. The robustness of the SAPT(KS) method with respect to the basis set size is also demonstrated. A theoretical justification for high accuracy of SAPT(KS) predictions for the electrostatic, first-order exchange, and second-order induction energies has been provided.
一种基于Kohn-Sham行列式的对称适配微扰理论[SAPT(KS)],并利用渐近修正的交换相关势,已被应用于He2、Ne2、(H2O)2和(CO2)2二聚体。结果表明,在当前编程的理论水平下,SAPT(KS)能够恢复静电能、一阶交换能、二阶诱导能和交换诱导能,其精度接近并偶尔超过常规SAPT的精度。使用渐近修正是实现这种精度的关键。SAPT(KS)结果可以在常规SAPT计算所需时间的一小部分内获得。还证明了SAPT(KS)方法相对于基组大小的稳健性。已为SAPT(KS)对静电能、一阶交换能和二阶诱导能预测的高精度提供了理论依据。