中性和带电激励的系综密度泛函理论

IF 7.1 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Filip Cernatic, Bruno Senjean, Vincent Robert, Emmanuel Fromager
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引用次数: 10

摘要

综述了激发态(时间无关)系综密度泛函理论(DFT)领域的最新进展。讨论了Gross-Oliveira-Kohn (GOK)和n中心系综形式,它们在数学上非常相似,并且分别允许对中性和带电电子激发进行原则上精确的描述。重点强调了关键的精确结果,例如臭名昭著的导数不连续问题与集成交换相关密度泛函中权重依赖描述之间的等价性。详细讨论了轨道相关系综Hartree-exchange (Hx)能量的变分计算。我们顺带表明,状态平均的个体精确Hx能量可能导致严重(尽管可解决)的v-可表征性问题。最后,我们探索了使用密度驱动相关概念的可能性,该概念最近被引入,并且不存在于规则基态DFT中,用于改进最先进的相关系综密度泛函近似。目前的综述反映了越来越多的群体将集合DFT转变为一种严格可靠的低成本激发态计算方法的努力。我们希望,在不久的将来,这一贡献将促进该领域新的正式和实际的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ensemble Density Functional Theory of Neutral and Charged Excitations

Recent progress in the field of (time-independent) ensemble density-functional theory (DFT) for excited states are reviewed. Both Gross–Oliveira–Kohn (GOK) and N-centered ensemble formalisms, which are mathematically very similar and allow for an in-principle-exact description of neutral and charged electronic excitations, respectively, are discussed. Key exact results, for example, the equivalence between the infamous derivative discontinuity problem and the description of weight dependencies in the ensemble exchange-correlation density functional, are highlighted. The variational evaluation of orbital-dependent ensemble Hartree-exchange (Hx) energies is discussed in detail. We show in passing that state-averaging individual exact Hx energies can lead to severe (although solvable) v-representability issues. Finally, we explore the possibility of using the concept of density-driven correlation, which has been introduced recently and does not exist in regular ground-state DFT, for improving state-of-the-art correlation density-functional approximations for ensembles. The present review reflects the efforts of a growing community to turn ensemble DFT into a rigorous and reliable low-cost computational method for excited states. We hope that, in the near future, this contribution will stimulate new formal and practical developments in the field.

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来源期刊
Topics in Current Chemistry
Topics in Current Chemistry Chemistry-General Chemistry
CiteScore
13.70
自引率
1.20%
发文量
48
期刊介绍: Topics in Current Chemistry is a journal that presents critical reviews of present and future trends in modern chemical research. It covers all areas of chemical science, including interactions with related disciplines like biology, medicine, physics, and materials science. The articles in this journal are organized into thematic collections, offering a comprehensive perspective on emerging research to non-specialist readers in academia or industry. Each review article focuses on one aspect of the topic and provides a critical survey, placing it in the context of the collection. Selected examples highlight significant developments from the past 5 to 10 years. Instead of providing an exhaustive summary or extensive data, the articles concentrate on methodological thinking. This approach allows non-specialist readers to understand the information fully and presents the potential prospects for future developments.
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