APT a next generation QM-based reactive force field model

被引:23
作者
Rappe, A. K. [1 ]
Bormann-Rochotte, L. M. [1 ]
Wiser, D. C. [1 ]
Hart, J. R. [1 ]
Pietsch, M. A. [1 ]
Casewit, C. J. [1 ]
Skiff, W. M. [1 ]
机构
[1] Colorado State Univ, Ft Collins, CO 80523 USA
关键词
D O I
10.1080/00268970701201106
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
Modelling reactivity at the nanoscale is a major computational challenge. Both reactive force field and combined QM-MM methodologies have been and are being developed to study reactivity at this boundary between molecules and the solid state. There have been more than 1500 publications since the mid-1990s, on combined QM-MM methodologies. Limitations in current models include the distortional characteristics of force field potential terms, the smooth transit from one potential surface to another, rather than surface hopping, and the blending of electrostatics between QM and MM portions of a QM-MM model. Functional forms, potential surface coupling terms, and parameterization strategies for the Approximate Pair Theory (APT), a next generation reactive force field model, are described. The APT model has been developed to correct a number of limitations in current reactive force field models as well as providing a foundation for a next generation QM-MM model. Chemical bonding concepts are used to develop fully dissociative bond stretch, bend, torsion, and inversion valence terms. Quantum mechanics also provides functional forms for potential surface coupling terms that permit a general description of reactivity from hydrogen bonding, through non-classical carbocations and cracking, to olefin polymerization, oxidation, and metathesis. Van der Waals, electrostatic, and metallic bonding models also derive from quantum mechanical resonance. Finally, Pauli Principle-based orthogonality provides a way to electrostatically couple the QM and MM portions of a QM-MM model that will support arbitrarily large basis sets.
引用
收藏
页码:301 / 324
页数:24
相关论文
共 98 条
[1]   BENZENE, AROMATIC RINGS, VANDERWAALS MOLECULES, AND CRYSTALS OF AROMATIC-MOLECULES IN MOLECULAR MECHANICS (MM3) [J].
ALLINGER, NL ;
LII, JH .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 1987, 8 (08) :1146-1153
[2]   SHAPES EMPIRICAL FORCE-FIELD - NEW TREATMENT OF ANGULAR POTENTIALS AND ITS APPLICATION TO SQUARE-PLANAR TRANSITION-METAL COMPLEXES [J].
ALLURED, VS ;
KELLY, CM ;
LANDIS, CR .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1991, 113 (01) :1-12
[3]  
[Anonymous], 2012, Introduction to quantum mechanics with applications to chemistry
[4]  
[Anonymous], 1976, CHEM BONDS BONDS ENE
[5]   BEBO CALCULATIONS .1. ACTIVATION-ENERGIES AND KINETIC ISOTOPE-EFFECTS FOR REACTIONS OF CH3 AND CF3 RADICALS WITH HCL AND H2S [J].
ARTHUR, NL ;
MCDONELL, JA .
JOURNAL OF CHEMICAL PHYSICS, 1972, 56 (06) :3100-&
[6]   A Relation Between Internuclear Distances and Bond Force Constants [J].
Badger, Richard M. .
JOURNAL OF CHEMICAL PHYSICS, 1934, 2 (03)
[7]   Between the internuclear distances and force constants of molecules and its application to polyatomic molecules [J].
Badger, RM .
JOURNAL OF CHEMICAL PHYSICS, 1935, 3 (11) :710-714
[8]   CHARGE-DEPENDENT HAMILTONIAN FOR 1ST-ROW AND 2ND-ROW ATOMIC PROPERTIES [J].
BAKER, JD ;
ZERNER, MC .
JOURNAL OF PHYSICAL CHEMISTRY, 1990, 94 (07) :2866-2872
[9]   A CHARGE-ITERATIVE HAMILTONIAN FOR MOLECULAR ELECTRONIC-SPECTRA [J].
BAKER, JD ;
ZERNER, MC .
JOURNAL OF PHYSICAL CHEMISTRY, 1991, 95 (06) :2307-2311
[10]  
Bartlett RJ, 1998, MOL PHYS, V94, P1