D'Cunha Ruhee, Crawford T Daniel
Department of Chemistry, Virginia Tech, Blacksburg, Virginia 24061, United States.
Molecular Sciences Software Institute, 1880 Pratt Drive, Suite 1100, Blacksburg, Virginia 24060, United States.
J Chem Theory Comput. 2021 Jan 12;17(1):290-301. doi: 10.1021/acs.jctc.0c01086. Epub 2020 Dec 22.
Reduced-scaling methods are needed to make accurate and systematically improvable coupled cluster linear response methods for the calculation of molecular properties tractable for large molecules. In this paper, we examine the perturbed pair natural orbital-based PNO++ approach that creates an orbital space optimized for response properties derived from a lower-cost field-perturbed density matrix. We analyze truncation errors in correlation energies, dynamic polarizabilities, and specific rotations from a coupled cluster singles and doubles (CCSD) reference. We find that incorporating a fixed number of orbitals from the pair natural orbital (PNO) space into the PNO++ method-a new method presented here, the "combined PNO++" approach-recovers accuracy in the CCSD correlation energy while preserving the well-behaved convergence behavior of the PNO++ method for linear response properties.
需要采用约化规模方法,以使用于计算大分子分子性质的精确且可系统改进的耦合簇线性响应方法变得易于处理。在本文中,我们研究了基于微扰对自然轨道的PNO++方法,该方法创建了一个针对从低成本场微扰密度矩阵导出的响应性质进行优化的轨道空间。我们从耦合簇单双激发(CCSD)参考中分析了相关能、动态极化率和比旋光度的截断误差。我们发现,将来自对自然轨道(PNO)空间的固定数量的轨道纳入PNO++方法——这里提出的一种新方法,即“组合PNO++”方法——可恢复CCSD相关能的精度,同时保留PNO++方法在线性响应性质方面良好的收敛行为。