Sun Shichao, Williams-Young David, Li Xiaosong
Department of Chemistry , University of Washington , Seattle , Washington 98195 , United States.
J Chem Theory Comput. 2019 May 14;15(5):3162-3169. doi: 10.1021/acs.jctc.9b00095. Epub 2019 Apr 12.
Magnetic circular dichroism (MCD) experiments provide a sensitive tool for exploring geometric, magnetic, and electronic properties of chemical complexes and condensed matter systems. They are also challenging to simulate because of the need to simultaneously treat the perturbations of a finite magnetic field as well as an optical field. In this work, we introduce an ab initio approach that treats the external magnetic field nonperturbatively with London orbitals for simulating the MCD spectra of closed-shell systems. Effects of a magnetic field are included variationally in the spin-free nonrelativistic Hamiltonian, followed by a linear response formalism to directly calculate the difference in absorption between the left and right circularly polarized light. In addition to the presentation of underlying mathematical formalism and implementation, the method developed in this paper has been applied to simulations of MCD spectra of the sodium anion, 2,2,6,6-tetramethylcyclohexanone, and 3-methyl-2-hexanone. Results are discussed and compared to experiments.
磁圆二色性(MCD)实验为探索化学配合物和凝聚态物质系统的几何、磁性和电子性质提供了一种灵敏的工具。由于需要同时处理有限磁场和光场的微扰,对其进行模拟也具有挑战性。在这项工作中,我们引入了一种从头算方法,该方法用伦敦轨道非微扰地处理外部磁场,以模拟闭壳层系统的MCD光谱。磁场的影响在无自旋非相对论哈密顿量中通过变分法包含进来,然后采用线性响应形式直接计算左旋和右旋圆偏振光吸收的差异。除了介绍基本的数学形式和实现方法外,本文所开发的方法已应用于模拟钠离子、2,2,6,6-四甲基环己酮和3-甲基-2-己酮的MCD光谱。对结果进行了讨论并与实验进行了比较。