Irons Tom J P, David Grégoire, Teale Andrew M
School of Chemistry, University of Nottingham, University Park, Nottingham NG7 2RD, United Kingdom.
Hylleraas Centre for Quantum Molecular Sciences, Department of Chemistry, University of Oslo, P. O. Box 1033 Blindern, N-0315 Oslo, Norway.
J Chem Theory Comput. 2021 Apr 13;17(4):2166-2185. doi: 10.1021/acs.jctc.0c01297. Epub 2021 Mar 16.
An efficient implementation of geometrical derivatives at the Hartree-Fock (HF) and current-density functional theory (CDFT) levels is presented for the study of molecular structure in strong magnetic fields. The required integral derivatives are constructed using a hybrid McMurchie-Davidson and Rys quadrature approach, which combines the amenability of the former to the evaluation of derivative integrals with the efficiency of the latter for basis sets with high angular momentum. In addition to its application to evaluating derivatives of four-center integrals, this approach is also applied to gradients using the resolution-of-the-identity approximation, enabling efficient optimization of molecular structure for many-electron systems under a strong magnetic field. The CDFT contributions have been implemented for a wide range of density functionals up to and including the meta-GGA level with current-density dependent contributions and (range-separated) hybrids for the first time. Illustrative applications are presented to the OH and benzene molecules, revealing the rich and complex chemistry induced by the presence of an external magnetic field. Challenges for geometry optimization in strong fields are highlighted, along with the requirement for careful analysis of the resulting electronic structure at each stationary point. The importance of correlation effects is examined by comparison of results at the HF and CDFT levels. The present implementation of molecular gradients at the CDFT level provides a cost-effective approach to the study of molecular structure under strong magnetic fields, opening up many new possibilities for the study of chemistry in this regime.
本文提出了一种在Hartree-Fock(HF)和电流密度泛函理论(CDFT)水平上有效实现几何导数的方法,用于研究强磁场中的分子结构。所需的积分导数是使用混合的McMurchie-Davidson和Rys求积方法构建的,该方法将前者对导数积分评估的适应性与后者对高角动量基组的效率相结合。除了应用于评估四中心积分的导数外,该方法还应用于使用单位分解近似的梯度,从而能够在强磁场下对多电子系统的分子结构进行高效优化。首次在包括meta-GGA水平在内的广泛密度泛函中实现了CDFT贡献,其中包括与电流密度相关的贡献以及(范围分离的)杂化泛函。本文给出了OH和苯分子的示例应用,揭示了外部磁场存在所引发的丰富而复杂的化学现象。文中强调了强场中几何优化的挑战,以及在每个驻点仔细分析所得电子结构的必要性。通过比较HF和CDFT水平的结果,研究了相关效应的重要性。目前在CDFT水平上实现的分子梯度为研究强磁场下的分子结构提供了一种经济高效的方法,为该领域的化学研究开辟了许多新的可能性。