Doran Alexander E, Qiu David L, Hirata So
Department of Chemistry, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, United States.
J Phys Chem A. 2021 Aug 26;125(33):7344-7351. doi: 10.1021/acs.jpca.1c05021. Epub 2021 Aug 17.
A scalable stochastic algorithm is presented that can evaluate explicitly correlated (F12) second-order many-body perturbation (MP2) energies of weak, noncovalent, intermolecular interactions. It first transforms the formulas of the MP2 and F12 energy differences into a short sum of high-dimensional integrals of Green's functions in real space and imaginary time. These integrals are then evaluated by the Monte Carlo method augmented by parallel execution, redundant-walker convergence acceleration, direct-sampling autocorrelation elimination, and control-variate error reduction. By sharing electron-pair walkers across the supermolecule and its subsystems spanned by the joint basis set, the statistical uncertainty is reduced by one to 2 orders of magnitude in the MP2 binding energy corrected for the basis-set incompleteness and superposition errors. The method predicts the MP2-F12/aug-cc-pVDZ binding energy of 19.1 ± 4.0 kcal mol for the C dimer at the center distance of 9.748 Å.
提出了一种可扩展的随机算法,该算法能够明确评估弱非共价分子间相互作用的显式相关(F12)二阶多体微扰(MP2)能量。它首先将MP2和F12能量差的公式转化为实空间和虚时间中格林函数的高维积分的简短求和。然后通过并行执行、冗余游走收敛加速、直接采样自相关消除和控制变量误差减少增强的蒙特卡罗方法来评估这些积分。通过在超分子及其由联合基组跨越的子系统之间共享电子对游走,在针对基组不完备性和叠加误差校正的MP2结合能中,统计不确定性降低了1至2个数量级。该方法预测在中心距离为9.748 Å时,C二聚体的MP2-F12/aug-cc-pVDZ结合能为19.1±4.0 kcal mol。