Yoshida Yuichiro, Mizukami Wataru, Yoshida Norio
Center for Quantum Information and Quantum Biology, Osaka University, 1-2 Machikaneyama, Toyonaka, Osaka 560-0043, Japan.
Graduate School of Engineering Science, Osaka University, 1-3 Machikaneyama, Toyonaka, Osaka 560-8531, Japan.
J Chem Theory Comput. 2024 Mar 12;20(5):1962-1971. doi: 10.1021/acs.jctc.3c01189. Epub 2024 Feb 20.
We present a combination of three-dimensional reference interaction site model self-consistent field (3D-RISM-SCF) theory and the variational quantum eigensolver (VQE) to consider the solvent distribution effects within the framework of quantum-classical hybrid computing. The present method, 3D-RISM-VQE, does not include any statistical errors from the solvent configuration sampling owing to the analytical treatment of the statistical solvent distribution. We apply 3D-RISM-VQE to compute the spatial distribution functions of solvent water around a water molecule, the potential and Helmholtz energy curves of NaCl, and to analyze the Helmholtz energy component and related properties of HO and NH. Moreover, we utilize 3D-RISM-VQE to analyze the extent to which solvent effects alter the efficiency of quantum calculations compared with calculations in the gas phase using the -norms of molecular electronic Hamiltonians. Our results demonstrate that the efficiency of quantum chemical calculations on a quantum computer in solution is virtually the same as that in the gas phase.
我们提出了一种三维参考相互作用位点模型自洽场(3D-RISM-SCF)理论与变分量子本征求解器(VQE)的组合方法,以在量子-经典混合计算框架内考虑溶剂分布效应。目前的方法,即3D-RISM-VQE,由于对统计溶剂分布进行了解析处理,因此不包括来自溶剂构型采样的任何统计误差。我们应用3D-RISM-VQE来计算水分子周围溶剂水的空间分布函数、NaCl的势能和亥姆霍兹能曲线,并分析HO和NH的亥姆霍兹能分量及相关性质。此外,我们利用3D-RISM-VQE通过分子电子哈密顿量的 -范数来分析与气相计算相比,溶剂效应在多大程度上改变了量子计算的效率。我们的结果表明,在溶液中的量子计算机上进行量子化学计算的效率与在气相中的效率几乎相同。