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采用密度拟合和Cholesky分解近似的二阶准简并微扰理论的高效实现:多组态微扰理论能否使用Hartree-Fock轨道?

Efficient Implementation of the Second-Order Quasidegenerate Perturbation Theory with Density-Fitting and Cholesky Decomposition Approximations: Is It Possible To Use Hartree-Fock Orbitals for a Multiconfigurational Perturbation Theory?

作者信息

Bozkaya Uğur

机构信息

Department of Chemistry , Hacettepe University , Ankara 06800 , Turkey.

出版信息

J Chem Theory Comput. 2019 Aug 13;15(8):4415-4429. doi: 10.1021/acs.jctc.9b00378. Epub 2019 Aug 1.

Abstract

The high cost of common multireference second-order perturbation theory (MRPT2) methods compared with the single-reference variant (MP2) arises from the expensive complete active space self-consistent field (CASSCF) orbital optimization step. Furthermore, the use of conventional four-index electron repulsion integrals (ERIs) prevents their application to larger molecular systems due to expensive I/O procedures. To address these bottlenecks of the multiconfigurational second-order quasidegenerate perturbation theory (MC-QDPT2), an efficient implementation of QDPT2 with the density-fitting (DF) and Cholesky decomposition (CD) approximations, denoted by DF-QDPT2 and CD-QDPT2, is reported. For the DF/CD-QDPT2 methods, the Hose-Kaldor approach is used. The DF-QDPT2 method, with the cc-pwCVTZ basis set, dramatically reduces the computational cost compared to conventional multiconfigurational QDPT2 (MC-QDPT2, from the Gamess 2017.R2 package), with a more than 122-fold reduction for the largest member of the diradical test set considered. The DF approximation enables substantially accelerated energies to be obtained for the QDPT2 approach due to the significantly reduced I/O time. The performance of the DF-QDPT2 and CD-QDPT2 methods is compared with that of CASSCF, the multireference second-order perturbation theory (MRMP2), MC-QDPT2, and CASSCF-based second-order perturbation theory (CASPT2) methods for singlet-triplet energy splitting () in O and C molecules and for the dissociation energy of F. For the O and C molecules, the performance of the DF-QDPT2 and CD-QDPT2 methods is significantly better than that of CASSCF, MRMP2, MC-QDPT2, and CASPT2; while for the F case, the results of DF-QDPT2, CD-QDPT2, MRMP2, MC-QDPT2, and CASPT2 are similar and remarkably better than that of CASSCF, which fails dramatically. Moreover, the DF-QDPT2, CASSCF, CASPT2, and MRCI+Q methods are applied to potential energy curves (PECs) for N, CH, and F molecules. Our results demonstrate that the performance of DF-QDPT2 is substantially better than that of CASSCF and is comparable with that of CASPT2 for the molecules considered. Overall, the present application results demonstrate that the DF-QDPT2 and CD-QDPT2 methods are very promising for electronically challenging molecular systems suffering from (quasi)degeneracy problems, where the single-reference methods cannot provide an accurate electronic description, but the DF-QDPT2 and CD-QDPT2 methods can do so at significantly reduced computational costs.

摘要

与单参考变体(MP2)相比,常见的多参考二阶微扰理论(MRPT2)方法成本高昂,这源于昂贵的完全活性空间自洽场(CASSCF)轨道优化步骤。此外,由于I/O程序成本高昂,传统的四指标电子排斥积分(ERI)的使用限制了它们在更大分子系统中的应用。为了解决多组态二阶准简并微扰理论(MC-QDPT2)的这些瓶颈,本文报道了一种采用密度拟合(DF)和Cholesky分解(CD)近似的QDPT2有效实现方法,分别记为DF-QDPT2和CD-QDPT2。对于DF/CD-QDPT2方法,采用了Hose-Kaldor方法。与传统的多组态QDPT2(MC-QDPT2,来自Gamess 2017.R2软件包)相比,采用cc-pwCVTZ基组的DF-QDPT2方法显著降低了计算成本,对于所考虑的双自由基测试集中最大的分子,计算成本降低了122倍以上。由于I/O时间显著减少,DF近似使得能够为QDPT2方法大幅加速获得能量。将DF-QDPT2和CD-QDPT2方法的性能与CASSCF、多参考二阶微扰理论(MRMP2)、MC-QDPT2以及基于CASSCF的二阶微扰理论(CASPT2)方法在O和C分子的单重态-三重态能量分裂()以及F的解离能方面进行了比较。对于O和C分子,DF-QDPT2和CD-QDPT2方法的性能明显优于CASSCF、MRMP2、MC-QDPT2和CASPT2;而对于F的情况,DF-QDPT2、CD-QDPT2、MRMP2、MC-QDPT2和CASPT2的结果相似,且明显优于CASSCF,后者表现很差。此外,将DF-QDPT2、CASSCF、CASPT2和MRCI+Q方法应用于N、CH和F分子的势能曲线(PEC)。我们的结果表明,对于所考虑的分子,DF-QDPT2的性能明显优于CASSCF,与CASPT2相当。总体而言,本应用结果表明,DF-QDPT2和CD-QDPT2方法对于存在(准)简并问题的电子挑战性分子系统非常有前景,在这些系统中,单参考方法无法提供准确的电子描述,但DF-QDPT2和CD-QDPT2方法可以在显著降低计算成本的情况下做到这一点。

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