Department of Chemistry, University of Waikato, Private Bag 3105, Hamilton, New Zealand.
J Chem Phys. 2011 Jan 21;134(3):034301. doi: 10.1063/1.3526956.
We have optimized the lowest energy structures and calculated interaction energies for the CO(2)-Ar, CO(2)-N(2), CO(2)-CO, CO(2)-H(2)O, and CO(2)-NH(3) dimers with the recently developed explicitly correlated coupled cluster singles doubles and perturbative triples [CCSD(T)]-F12 methods and the associated VXZ-F12 (where X = D,T,Q) basis sets. For a given cardinal number, we find that results obtained with the CCSD(T)-F12 methods are much closer to the CCSD(T) complete basis set limit than the conventional CCSD(T) results. The relatively modest increase in the computational cost between explicit and conventional CCSD(T) is more than compensated for by the impressive accuracy of the CCSD(T)-F12 method. We recommend use of the CCSD(T)-F12 methods in combination with the VXZ-F12 basis sets for the accurate determination of equilibrium geometries and interaction energies of weakly bound electron donor acceptor complexes.
我们已经优化了最低能量结构,并使用最近开发的显式相关耦合簇单双和微扰三[CCSD(T)]-F12 方法以及相关的 VXZ-F12(其中 X = D,T,Q)基组计算了 CO(2)-Ar、CO(2)-N(2)、CO(2)-CO、CO(2)-H(2)O 和 CO(2)-NH(3) 二聚体的相互作用能。对于给定的基数,我们发现,使用 CCSD(T)-F12 方法得到的结果比传统的 CCSD(T)结果更接近 CCSD(T)完全基组极限。显式 CCSD(T)和传统 CCSD(T)之间的计算成本相对适度增加,被 CCSD(T)-F12 方法令人印象深刻的准确性所弥补。我们建议在确定弱束缚电子给体受体配合物的平衡几何形状和相互作用能时,使用 CCSD(T)-F12 方法与 VXZ-F12 基组相结合。