Fractional charging of electronically open molecules: An explicit projection operator approach.

IF 3.1 2区 化学 Q3 CHEMISTRY, PHYSICAL Journal of Chemical Physics Pub Date : 2025-03-07 DOI:10.1063/5.0251855
Bendik Støa Sannes, Jacob Pedersen, Ida-Marie Høyvik
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Abstract

We introduce an approach to describe fractional charging of molecules interacting non-covalently with their environment. The formalism is based on dividing the full orbital space into orbitals localized to the molecule and orbitals localized to the environment. This enables a separation of the full electronic Hamiltonian into terms referencing only molecule, environment, or interaction terms. The interaction terms are divided into particle-conserving interactions and particle-non-conserving (particle-breaking) interactions. The particle-conserving interactions are dominant and may be included using standard embedding schemes. The particle-breaking terms are responsible for inducing fractional charging, and we show that the local orbital space approach provides a convenient framework for different types of perturbative treatments. In the local orbital basis, we generate a basis of many-electron states for the composite system, in which a specific molecular charge may label each state. This basis is used to construct a projection operator acting on the Liouville-von Neumann equation for the composite system to yield an equation for the reduced density matrix for the molecule. The diagonal elements of the reduced density matrix represent populations of different molecular charge states and determine the fractional charging. The projected Liouville-von Neumann equation is the starting point for two perturbative treatments: damped response theory and Redfield theory. The damped response framework introduces energy broadening of electronic states. Phenomenological broadening is also introduced into the Redfield equation. We illustrate the presented formalism by considering benzene physisorbed on a finite graphene sheet as a toy model.

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电子开放分子的分数电荷:一种显式投影算子方法。
我们介绍了一种描述分子与环境非共价相互作用的分数电荷的方法。其形式是基于将整个轨道空间划分为分子局域化轨道和环境局域化轨道。这样就可以将完整的电子哈密顿量分离为仅引用分子、环境或相互作用项的项。相互作用项分为粒子守恒相互作用和粒子-非守恒(粒子破缺)相互作用。守恒粒子的相互作用是主要的,可以使用标准的嵌入方案。粒子破碎项负责诱导分数电荷,我们表明局部轨道空间方法为不同类型的微扰处理提供了一个方便的框架。在局部轨道基中,我们生成了复合体系的多电子态基,其中一个特定的分子电荷可以标记每个状态。该基用于构造作用于复合体系的Liouville-von Neumann方程的投影算子,从而得到分子的约化密度矩阵方程。简化密度矩阵的对角线元素表示不同分子电荷态的居群并决定分数电荷。投影的Liouville-von Neumann方程是两种微扰处理的起点:阻尼响应理论和Redfield理论。阻尼响应框架引入了电子态的能量展宽。Redfield方程还引入了现象学展宽。我们通过考虑苯在有限石墨烯片上的物理吸附作为玩具模型来说明所提出的形式。
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来源期刊
Journal of Chemical Physics
Journal of Chemical Physics 物理-物理:原子、分子和化学物理
CiteScore
7.40
自引率
15.90%
发文量
1615
审稿时长
2 months
期刊介绍: The Journal of Chemical Physics publishes quantitative and rigorous science of long-lasting value in methods and applications of chemical physics. The Journal also publishes brief Communications of significant new findings, Perspectives on the latest advances in the field, and Special Topic issues. The Journal focuses on innovative research in experimental and theoretical areas of chemical physics, including spectroscopy, dynamics, kinetics, statistical mechanics, and quantum mechanics. In addition, topical areas such as polymers, soft matter, materials, surfaces/interfaces, and systems of biological relevance are of increasing importance. Topical coverage includes: Theoretical Methods and Algorithms Advanced Experimental Techniques Atoms, Molecules, and Clusters Liquids, Glasses, and Crystals Surfaces, Interfaces, and Materials Polymers and Soft Matter Biological Molecules and Networks.
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