论文标题

热辅助占用密度功能理论的激发能:理论和计算实现

Excitation Energies from Thermally-Assisted-Occupation Density Functional Theory: Theory and Computational Implementation

论文作者

Yeh, Shu-Hao, Manjanath, Aaditya, Cheng, Yuan-Chung, Chai, Jeng-Da, Hsu, Chao-Ping

论文摘要

时间依赖性密度功能理论(TDDFT)已广泛用于研究各种分子系统的激发态性能。但是,当前的TDDFT在很大程度上依赖于相应的地基密度功能理论(DFT)计算的结果,由于在非动力相关效应中缺乏适当的治疗,可能会因误差而容易出现。最近,热辅助占用密度功能理论(TAO-DFT)[J.-D。柴,\ textit {j。化学提出了物理。在这项工作中,我们开发了时间依赖性(TD)TAO-DFT,这是Tao-DFT框架内激发态的时间依赖性的线性响应理论。通过对H $ _ {2} $的激发态的测试,第一个三重态激发态($ 1^σ_U^+$)被很好地描述了,没有非疑问激发​​能。 TDTAO-DFT还在分离限制中产生零单元 - 三个差距,对于地面singlet($ 1^1σ_g^+$)和第一个三重态($ 1^3σ_U^+$)。此外,与传统的TDDFT相比,从TDTAO-DFT获得的总体激发势能表面通常得到改善,并且更好地与动机方程耦合群集单打和双打(EOM-CCSD)的结果更好。

The time-dependent density functional theory (TDDFT) has been broadly used to investigate the excited-state properties of various molecular systems. However, the current TDDFT heavily relies on outcomes from the corresponding ground-state density functional theory (DFT) calculations which may be prone to errors due to the lack of proper treatment in the non-dynamical correlation effects. Recently, thermally-assisted-occupation density functional theory (TAO-DFT) [J.-D. Chai, \textit{J. Chem. Phys.} \textbf{136}, 154104 (2012)], a DFT with fractional orbital occupations, was proposed, explicitly incorporating the non-dynamical correlation effects in the ground-state calculations with low computational complexity. In this work, we develop time-dependent (TD) TAO-DFT, which is a time-dependent, linear-response theory for excited states within the framework of TAO-DFT. With tests on the excited states of H$_{2}$, the first triplet excited state ($1^3Σ_u^+$) was described well, with non-imaginary excitation energies. TDTAO-DFT also yields zero singlet-triplet gap in the dissociation limit, for the ground singlet ($1^1Σ_g^+$) and the first triplet state ($1^3Σ_u^+$). In addition, as compared to traditional TDDFT, the overall excited-state potential energy surfaces obtained from TDTAO-DFT are generally improved and better agree with results from the equation-of-motion coupled-cluster singles and doubles (EOM-CCSD).

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