Pemberton Miles J, Irons Tom J P, Helgaker Trygve, Teale Andrew M
School of Chemistry, University of Nottingham, Nottingham NG7 2RD, United Kingdom.
Hylleraas Centre for Quantum Molecular Sciences, Department of Chemistry, University of Oslo, P.O. Box 1033, Blindern, Oslo N-0315, Norway.
J Chem Phys. 2022 May 28;156(20):204113. doi: 10.1063/5.0092520.
A novel implementation for the calculation of molecular gradients under strong magnetic fields is employed at the current-density functional theory level to optimize the geometries of molecular structures, which change significantly under these conditions. An analog of the ab initio random structure search is utilized to determine the ground-state equilibrium geometries for He and CH systems at high magnetic field strengths, revealing the most stable structures to be those in high-spin states with a planar geometry aligned perpendicular to the field. The electron and current densities for these systems have also been investigated to develop an explanation of chemical bonding in the strong field regime, providing an insight into the exotic chemistry present in these extreme environments.
在当前密度泛函理论水平下,采用一种用于计算强磁场下分子梯度的新方法来优化分子结构的几何形状,这些分子结构在这些条件下会发生显著变化。利用从头算随机结构搜索的类似方法来确定高磁场强度下He和CH体系的基态平衡几何形状,结果表明最稳定的结构是那些具有垂直于磁场排列的平面几何形状的高自旋态结构。还对这些体系的电子密度和电流密度进行了研究,以解释强场区域中的化学键合,从而深入了解这些极端环境中存在的奇异化学现象。