Neupane Pauf, Bartels David M, Thompson Ward H
Department of Chemistry, University of Kansas, Lawrence, Kansas 66045, United States.
Radiation Laboratory, University of Notre Dame, Notre Dame, Indiana 46556, United States.
J Phys Chem B. 2023 Aug 24;127(33):7361-7371. doi: 10.1021/acs.jpcb.3c03540. Epub 2023 Aug 9.
Mixed quantum-classical molecular dynamics simulations have been important tools for studying the hydrated electron. They generally use a one-electron pseudopotential to describe the interactions of an electron with the water molecules. This approximation shows both the strength and weakness of the approach. On the one hand, it enables extensive statistical sampling and large system sizes that are not possible with more accurate molecular dynamics methods. On the other hand, there has (justifiably) been much debate about the ability of pseudopotentials to accurately and quantitatively describe the hydrated electron properties. These pseudopotentials have largely been derived by fitting them to calculations of an electron interacting with a single water molecule. In this paper, we present a proof-of-concept demonstration of an alternative approach in which the pseudopotential parameters are determined by optimizing them to reproduce key experimental properties. Specifically, we develop a new pseudopotential, using the existing TBOpt model as a starting point, which correctly describes the hydrated electron vertical detachment energy and radius of gyration. In addition to these properties, this empirically optimized model displays a significantly modified solvation structure, which improves, for example, the prediction of the partial molar volume.
混合量子-经典分子动力学模拟一直是研究水合电子的重要工具。它们通常使用单电子赝势来描述电子与水分子之间的相互作用。这种近似方法既显示了该方法的优势,也显示了其劣势。一方面,它能够进行广泛的统计采样和处理更大的系统规模,而这是更精确的分子动力学方法所无法实现的。另一方面,关于赝势准确和定量描述水合电子性质的能力一直(合理地)存在很多争论。这些赝势很大程度上是通过将它们拟合到电子与单个水分子相互作用的计算中推导出来的。在本文中,我们展示了一种概念验证,即一种替代方法:通过优化赝势参数以重现关键实验性质来确定赝势参数。具体而言,我们以现有的TBOpt模型为起点,开发了一种新的赝势,它能够正确描述水合电子的垂直脱离能和回转半径。除了这些性质外,这个经验优化模型还展示了显著改变的溶剂化结构,例如,这改善了偏摩尔体积的预测。