Antony Jens, Grimme Stefan
Theoretische Organische Chemie, Organisch-Chemisches Institut der Universität Münster, Corrensstrasse 40, D-48149 Münster, Germany.
J Phys Chem A. 2007 Jun 7;111(22):4862-8. doi: 10.1021/jp070589p. Epub 2007 May 17.
Testing of the spin-component scaled second-order Møller-Plesset (SCS-MP2) method for the computation of noncovalent interaction energies is done with a database of 165 biologically relevant complexes. The effects of the spin-scaling procedure (i.e., MP2 vs SCS-MP2), the basis set size, and the corrections for basis set superposition error (BSSE) are systematically examined. When using two-point basis set extrapolations for the correlation energy, augmentation of the atomic orbital basis with computationally costly diffuse functions is found to be obsolete. In general, SCS-MP2 also improves results for noncovalent interactions statistically on MP2, and significant outliers are removed. Moreover, it is shown that effects of BSSE and one-particle basis set incompleteness almost cancel each other in the case of triple-zeta sets (SCS-MP2/TZVPP or SCS-MP2/cc-pVTZ without counterpoise correction), which opens a practical route to efficient computations for large systems. We recommend SCS-MP2 as the preferred quantum chemical wave function based method for the noncovalent interactions in large biologically relevant systems when reasonable coupled-cluster with single and double and perturbative triple excitations (CCSD(T)) calculations cannot be performed anymore. A comparison to MP2 and CCSD(T) interaction energies for n-alkane dimers, however, indicates (and this also holds to a lesser extent for hydrogen-bonded systems) limitations of SCS-MP2 when treating chemically "saturated" interactions. The different behavior of second-order perturbation theory for saturated and for stacked pi-systems is discussed.
利用包含165个生物相关复合物的数据库,对用于计算非共价相互作用能的自旋分量缩放二阶微扰(SCS-MP2)方法进行了测试。系统地研究了自旋缩放过程(即MP2与SCS-MP2)、基组大小以及基组叠加误差(BSSE)校正的影响。当对相关能使用两点基组外推法时,发现用计算成本高昂的弥散函数扩充原子轨道基组已过时。一般来说,SCS-MP2在统计上也比MP2改善了非共价相互作用的结果,并去除了显著的异常值。此外,研究表明,在三重ζ基组(SCS-MP2/TZVPP或无反平衡校正的SCS-MP2/cc-pVTZ)的情况下,BSSE和单粒子基组不完全性的影响几乎相互抵消,这为大型系统的高效计算开辟了一条实用途径。我们推荐SCS-MP2作为基于量子化学波函数的首选方法,用于计算大型生物相关系统中的非共价相互作用,前提是无法再进行合理的单双激发耦合簇和微扰三重激发(CCSD(T))计算。然而,对正构烷烃二聚体的MP2和CCSD(T)相互作用能的比较表明(对于氢键系统,这种情况在较小程度上也成立),SCS-MP2在处理化学“饱和”相互作用时存在局限性。讨论了二阶微扰理论在饱和和堆积π体系中的不同行为。