A Variational Linear-Scaling Framework to Build Practical, Efficient Next-Generation Orbital-Based Quantum Force Fields

被引:51
作者
Giese, Timothy J.
Chen, Haoyuan
Dissanayake, Thakshila
Giambasu, George M.
Heldenbrand, Hugh
Huang, Ming
Kuechler, Erich R.
Lee, Tai-Sung
Panteva, Maria T.
Radak, Brian K.
York, Darrin M. [1 ]
机构
[1] Rutgers State Univ, BioMaPS Inst, Piscataway, NJ 08854 USA
基金
美国国家卫生研究院; 美国国家科学基金会;
关键词
DENSITY-FUNCTIONAL THEORY; TIGHT-BINDING METHOD; X-POL; MECHANICAL METHODS; CONQUER METHOD; FOCK MATRIX; COMPLEX MATERIALS; ENERGY GRADIENTS; HARTREE-FOCK; COMPUTATION;
D O I
10.1021/ct3010134
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
We introduce a new hybrid molecular orbital/density-functional modified divide-and-conquer (mDC) approach that allows the linear-scaling calculation of very large quantum systems. The method provides a powerful framework from which linear-scaling force fields for molecular simulations can be developed. The method is variational in the energy and has simple, analytic gradients and essentially no break-even point with respect to the corresponding full electronic structure calculation. Furthermore, the new approach allows intermolecular forces to be properly balanced such that nonbonded interactions can be treated, in some cases, to much higher accuracy than the full calculation. The approach is illustrated using the second-order self-consistent charge density-functional tight-binding model (DFTB2). Using this model as a base Hamiltonian, the new mDC approach is applied to a series of water systems, where results show that geometries and interaction energies between water molecules are greatly improved relative to full DFTB2. In order to achieve substantial improvement hi the accuracy of intermolecular binding energies and hydrogen bonded cluster geometries, it was necessary to extend the DFTB2 model to higher-order atom-centered multipoles for the second-order self-consistent intermolecular electrostatic term. Using generalized, linear-scaling electrostatic methods, timings demonstrate that the method is able to calculate a water system of 3000 atoms in less than half of a second, and systems of up to 1 million atoms in only a few minutes using a conventional desktop workstation.
引用
收藏
页码:1417 / 1427
页数:11
相关论文
共 106 条
[1]   A divide and conquer real space finite-element Hartree-Fock method [J].
Alizadegan, R. ;
Hsia, K. J. ;
Martinez, T. J. .
JOURNAL OF CHEMICAL PHYSICS, 2010, 132 (03)
[2]   AN IMPLEMENTATION OF A DIVIDE-AND-CONQUER ALGORITHM FOR THE UNITARY EIGENPROBLEM [J].
AMMAR, GS ;
REICHEL, L ;
SORENSEN, DC .
ACM TRANSACTIONS ON MATHEMATICAL SOFTWARE, 1992, 18 (03) :292-307
[3]  
[Anonymous], J MOL STRUCT THEOCHE
[4]  
[Anonymous], MULTISCALE QUANTUM M
[5]   Quantum mechanical computations and spectroscopy: From small rigid molecules in the gas phase to large flexible molecules in solution [J].
Barone, Vincenzo ;
Improta, Roberto ;
Rega, Nadia .
ACCOUNTS OF CHEMICAL RESEARCH, 2008, 41 (05) :605-616
[6]   Real-space mesh techniques in density-functional theory [J].
Beck, TL .
REVIEWS OF MODERN PHYSICS, 2000, 72 (04) :1041-1080
[7]   Molecular Structural Dynamics Probed by Ultrafast X-Ray Absorption Spectroscopy [J].
Bressler, Christian ;
Chergui, Majed .
ANNUAL REVIEW OF PHYSICAL CHEMISTRY, VOL 61, 2010, 61 :263-282
[8]   NMR spectroscopy: quantum-chemical calculations [J].
Buehl, Michael ;
van Mourik, Tanja .
WILEY INTERDISCIPLINARY REVIEWS-COMPUTATIONAL MOLECULAR SCIENCE, 2011, 1 (04) :634-647
[9]   Analytic energy gradients for the Gaussian very fast multipole method (GvFMM) [J].
Burant, JC ;
Strain, MC ;
Scuseria, GE ;
Frisch, MJ .
CHEMICAL PHYSICS LETTERS, 1996, 248 (1-2) :43-49
[10]  
Castner EW, 2011, ANNU REV PHYS CHEM, V62, P85, DOI [10.1146/annurev-physchem-032210-103421, 10.1146/annurev.physchem.032210-103421]