Kumar Ravi, Ghosh Aryya, Vaval Nayana
Academy of Scientific and Innovative Research, CSIR-Human Resource Development Center (CSIR-HRDC) Campus, Postal Staff College Area, Ghaziabad, Uttar Pradesh 201002, India.
Electronic Structure Theory Group, Physical Chemistry Division, CSIR-National Chemical Laboratory, Pune 411008, India.
J Chem Theory Comput. 2022 Feb 8;18(2):807-816. doi: 10.1021/acs.jctc.1c01036. Epub 2022 Jan 12.
We have employed the highly accurate complex absorbing potential based ionization potential equation-of-motion coupled cluster singles and doubles (CAP-IP-EOM-CCSD) method to study the various intermolecular decay processes in ionized metals (Li, Na, K) microsolvated by water molecules. For the Li atom, the electron is ionized from the 1s subshell. However, for Na and K atoms, the electron is ionized from 2s and both 2s and 2p subshells, respectively. We have investigated decay processes for the Li-(HO) ( = 1-3) systems, as well as Na-(HO) ( = 1, 2), and K-HO. The lithium cation in water can decay only via electron transfer mediated decay (ETMD) as there are no valence electrons in lithium. We have investigated how the various decay processes change in the presence of different alkali metal atoms and how the increasing number of water molecules play a significant role in the decay of microsolvated systems. To see the effect of the environment, we have studied Li-NH in comparison to Li-HO. In the case of Na-HO, we have studied the impact of bond distance on the decay width. The effect of polarization on decay width was checked for the X-HO (X = Li, Na) systems. We used the PCM model to study the polarization effect. We have compared our results with existing theoretical and experimental results wherever available in the literature.
我们采用了基于高精度复吸收势的电离势运动方程耦合簇单双激发(CAP-IP-EOM-CCSD)方法,来研究被水分子微溶剂化的离子化金属(锂、钠、钾)中的各种分子间衰变过程。对于锂原子,电子从1s子壳层电离。然而,对于钠和钾原子,电子分别从2s以及2s和2p子壳层电离。我们研究了Li-(HO)( = 1 - 3)体系以及Na-(HO)( = 1, 2)和K-HO的衰变过程。水中的锂阳离子只能通过电子转移介导衰变(ETMD)进行衰变,因为锂没有价电子。我们研究了在不同碱金属原子存在下各种衰变过程如何变化,以及水分子数量的增加在微溶剂化体系衰变中如何发挥重要作用。为了观察环境的影响,我们将Li-NH与Li-HO进行了比较。在Na-HO的情况下,我们研究了键距对衰变宽度的影响。对于X-HO(X = Li, Na)体系,检查了极化对衰变宽度的影响。我们使用PCM模型来研究极化效应。我们将我们的结果与文献中现有的理论和实验结果进行了比较。