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高效模拟液相光电子能谱和重组能:多电荷阴离子的困难案例。

Efficient modeling of liquid phase photoemission spectra and reorganization energies: Difficult case of multiply charged anions.

机构信息

Department of Physical Chemistry, University of Chemistry and Technology, Technická 5, Prague, 16628, Czech Republic.

出版信息

J Comput Chem. 2017 Mar 15;38(7):427-437. doi: 10.1002/jcc.24696.

Abstract

An efficient approach for quantitative modeling of liquid phase photoelectron spectra, reorganization energies, and redox potentials with DFT-based molecular dynamics simulations is presented. The method is based on a large scale cluster-continuum approach combined with the so-called reflection principle (RP). Finite size clusters of solute molecules with solvating water molecules are at first generated using either classical molecular dynamics or molecular dynamics with a quantum thermostat which accounts for nuclear quantum effects. In the next step, the electron binding energies are calculated. Finite-size corrections for (i) positions of electron binding energies and (ii) width of the spectrum are evaluated via a dielectric continuum approach. The performance of such a reflection principle with additional broadening approach (RP-AB) for oxidation of multiply charged iron anions, [Fe(CN) ] and [Fe(CN) ] is demonstrated. The role of nuclear quantum effects is discussed as well as the relation between spectroscopic data and electrochemical quantities. Results are compared with recent liquid photoemission experiments, explaining the obstacles for applying liquid phase photoemission spectroscopy as a direct method for obtaining absolute redox potentials and suggesting a way to overcome them. © 2017 Wiley Periodicals, Inc.

摘要

本文提出了一种基于密度泛函理论的分子动力学模拟的液相光电子能谱、重组能和氧化还原电位的定量建模的有效方法。该方法基于大规模的簇-连续体方法与所谓的反射原理(RP)相结合。首先使用经典分子动力学或量子恒温器的分子动力学生成具有溶剂水分子的溶质分子的有限尺寸簇,该恒温器考虑了核量子效应。在下一个步骤中,计算电子结合能。通过介电连续体方法评估(i)电子结合能的位置和(ii)谱的宽度的有限尺寸校正。对于多电荷铁阴离子[Fe(CN)]和[Fe(CN)]的氧化,演示了这种带有附加展宽方法(RP-AB)的反射原理的性能。讨论了核量子效应的作用以及光谱数据与电化学量之间的关系。结果与最近的液相光发射实验进行了比较,解释了将液相光发射光谱作为获得绝对氧化还原电位的直接方法的障碍,并提出了克服这些障碍的方法。©2017 威利父子公司。

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