National Research Centre "Kurchatov Institute", Moscow 123182, Russia.
Institute of Nuclear Physics and Technology, National Research Nuclear University "MEPhI" (Moscow Engineering Physics Institute), Moscow 115409, Russia.
Int J Mol Sci. 2024 Jan 25;25(3):1472. doi: 10.3390/ijms25031472.
We present a study of the intermolecular interactions in van der Waals complexes of methane and neon dimers within the framework of the CCSD method. This approach was implemented and applied to calculate and examine the behavior of the contracted two-particle reduced density matrix (2-RDM). It was demonstrated that the region near the minimum of the two-particle density matrix correlation part, corresponding to the primary bulk of the Coulomb hole contribution, exerts a significant influence on the dispersion interaction energetics of the studied systems. As a result, the bond functions approach was applied to improve the convergence performance for the intermolecular correlation energy results with respect to the size of the atomic basis. For this, substantial acceleration was achieved by introducing an auxiliary basis of bond functions centered on the minima of the 2-RDM. For both methane and neon dimers, this general conclusion was confirmed with a series of CCSD calculations for the 2-RDM and the correlation energies.
我们在 CCSD 方法的框架内研究了甲烷和氖二聚体范德华复合物中的分子间相互作用。该方法被用于计算和检验收缩双粒子约化密度矩阵(2-RDM)的行为。结果表明,在双粒子密度矩阵相关部分的最小值附近的区域,对应于库仑孔贡献的主要部分,对所研究系统的色散相互作用能有显著影响。因此,应用键函数方法来提高原子基大小对分子间相关能量结果的收敛性能。为此,通过在 2-RDM 的最小值处引入键函数辅助基,实现了显著的加速。对于甲烷和氖二聚体,通过一系列 2-RDM 和相关能量的 CCSD 计算,验证了这一普遍结论。