The correlation-consistent composite approach: Application to the G3/99 test set

被引:128
作者
DeYonker, Nathan J. [1 ]
Grimes, Tom [1 ]
Yockel, Scott [1 ]
Dinescu, Adriana [1 ]
Mintz, Benjamin [1 ]
Cundari, Thomas R. [1 ]
Wilson, Angela K. [1 ]
机构
[1] Univ N Texas, Dept Chem, Ctr Adv Sci Comp & Modeling, Denton, TX 76203 USA
关键词
D O I
10.1063/1.2236116
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 correlation-consistent composite approach (ccCA), an ab initio composite technique for computing atomic and molecular energies, recently has been shown to successfully reproduce experimental data for a number of systems. The ccCA is applied to the G3/99 test set, which includes 223 enthalpies of formation, 88 adiabatic ionization potentials, 58 adiabatic electron affinities, and 8 adiabatic proton affinities. Improvements on the original ccCA formalism include replacing the small basis set quadratic configuration interaction computation with a coupled cluster computation, employing a correction for scalar relativistic effects, utilizing the tight-d forms of the second-row correlation-consistent basis sets, and revisiting the basis set chosen for geometry optimization. With two types of complete basis set extrapolation of MP2 energies, ccCA results in an almost zero mean deviation for the G3/99 set (with a best value of -0.10 kcal mol(-1)), and a 0.96 kcal mol(-1) mean absolute deviation, which is equivalent to the accuracy of the G3X model chemistry. There are no optimized or empirical parameters included in the computation of ccCA energies. Except for a few systems to be discussed, ccCA performs as well as or better than Gn methods for most systems containing first-row atoms, while for systems containing second-row atoms, ccCA is an improvement over Gn model chemistries. (c) 2006 American Institute of Physics.
引用
收藏
页数:15
相关论文
共 131 条
[91]  
MOORE CE, 1971, 35 US DEP COMM NATL
[92]  
NEVGEBAVER CA, 1956, J PHYS CHEM, V60, P1318
[93]   A complete basis set model chemistry .5. Extensions to six or more heavy atoms [J].
Ochterski, JW ;
Petersson, GA ;
Montgomery, JA .
JOURNAL OF CHEMICAL PHYSICS, 1996, 104 (07) :2598-2619
[94]   Assessment of W1 and W2 theories for the computation of electron affinities, ionization potentials, heats of formation, and proton affinities [J].
Parthiban, S ;
Martin, JML .
JOURNAL OF CHEMICAL PHYSICS, 2001, 114 (14) :6014-6029
[95]  
Pedley J.B., 1986, THERMOCHEMICAL DATA, DOI DOI 10.1021/ja400311h
[96]   Accurate correlation consistent basis sets for molecular core-valence correlation effects: The second row atoms Al-Ar, and the first row atoms B-Ne revisited [J].
Peterson, KA ;
Dunning, TH .
JOURNAL OF CHEMICAL PHYSICS, 2002, 117 (23) :10548-10560
[97]   BENCHMARK CALCULATIONS WITH CORRELATED MOLECULAR WAVE-FUNCTIONS .4. THE CLASSICAL BARRIER HEIGHT OF THE H+H-2-]H-2+H REACTION [J].
PETERSON, KA ;
WOON, DE ;
DUNNING, TH .
JOURNAL OF CHEMICAL PHYSICS, 1994, 100 (10) :7410-7415
[98]  
Petersson GA, 1996, ABSTR PAP AM CHEM S, V212, P175
[99]   Calibration and comparison of the Gaussian-2, complete basis set, and density functional methods for computational thermochemistry [J].
Petersson, GA ;
Malick, DK ;
Wilson, WG ;
Ochterski, JW ;
Montgomery, JA ;
Frisch, MJ .
JOURNAL OF CHEMICAL PHYSICS, 1998, 109 (24) :10570-10579
[100]   A journey from generalized valence bond theory to the full CI complete basis set limit [J].
Petersson, GA ;
Frisch, MJ .
JOURNAL OF PHYSICAL CHEMISTRY A, 2000, 104 (11) :2183-2190