The Effective Fragment Molecular Orbital Method: Achieving High Scalability and Accuracy for Large Systems

被引:4
|
作者
Sattasathuchana, Tosaporn [1 ,2 ]
Xu, Peng [1 ,2 ]
Bertoni, Colleen [3 ]
Kim, Yu Lim [4 ]
Leang, Sarom S. [5 ]
Pham, Buu Q. [1 ,2 ]
Gordon, Mark S. [1 ,2 ]
机构
[1] Iowa State Univ, Dept Chem, Ames, IA 50011 USA
[2] Ames Natl Lab, Ames, IA 50011 USA
[3] Argonne Natl Lab, Argonne Leadership Comp Facil, Lemont, IL 60439 USA
[4] Argonne Natl Lab, Chem Sci & Engn Div, Lemont, IL 60439 USA
[5] EP Analyt Inc, San Diego, CA 92131 USA
基金
美国国家科学基金会;
关键词
INTERMOLECULAR PAULI REPULSION; R-7 DISPERSION INTERACTION; INTERACTION ENERGIES; APPROXIMATE FORMULA; POTENTIAL METHOD; INTEGRALS; PREDICTION; DERIVATION; MP2;
D O I
10.1021/acs.jctc.3c01309
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The effective fragment molecular orbital (EFMO) method has been developed to predict the total energy of a very large molecular system accurately (with respect to the underlying quantum mechanical method) and efficiently by taking advantage of the locality of strong chemical interactions and employing a two-level hierarchical parallelism. The accuracy of the EFMO method is partly attributed to the accurate and robust intermolecular interaction prediction between distant fragments, in particular, the many-body polarization and dispersion effects, which require the generation of static and dynamic polarizability tensors by solving the coupled perturbed Hartree-Fock (CPHF) and time-dependent HF (TDHF) equations, respectively. Solving the CPHF and TDHF equations is the main EFMO computational bottleneck due to the inefficient (serial) and I/O-intensive implementation of the CPHF and TDHF solvers. In this work, the efficiency and scalability of the EFMO method are significantly improved with a new CPU memory-based implementation for solving the CPHF and TDHF equations that are parallelized by either message passing interface (MPI) or hybrid MPI/OpenMP. The accuracy of the EFMO method is demonstrated for both covalently bonded systems and noncovalently bound molecular clusters by systematically examining the effects of basis sets and a key distance-related cutoff parameter, R- cut. R (cut) determines whether a fragment pair (dimer) is treated by the chosen ab initio method or calculated using the effective fragment potential (EFP) method (separated dimers). Decreasing the value of R- cut increases the number of separated (EFP) dimers, thereby decreasing the computational effort. It is demonstrated that excellent accuracy (<1 kcal/mol error per fragment) can be achieved when using a sufficiently large basis set with diffuse functions coupled with a small R- cut value. With the new parallel implementation, the total EFMO wall time is substantially reduced, especially with a high number of MPI ranks. Given a sufficient workload, nearly ideal strong scaling is achieved for the CPHF and TDHF parts of the calculation. For the first time, EFMO calculations with the inclusion of long-range polarization and dispersion interactions on a hydrated mesoporous silica nanoparticle with explicit water solvent molecules (more than 15k atoms) are achieved on a massively parallel supercomputer using nearly 1000 physical nodes. In addition, EFMO calculations on the carbinolamine formation step of an amine-catalyzed aldol reaction at the nanoscale with explicit solvent effects are presented.
引用
收藏
页码:2445 / 2461
页数:17
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