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通过精确的单重态-三重态能隙计算实现可靠的双自由基表征:应用于蒂勒、奇奇巴宾和米勒类似双自由基

Reliable Diradical Characterization via Precise Singlet-Triplet Gap Calculations: Application to Thiele, Chichibabin, and Müller Analogous Diradicals.

作者信息

Sun Qi, Brédas Jean-Luc, Li Hong

机构信息

Department of Chemistry and Biochemistry, The University of Arizona, Tucson, Arizona 85721-0041, United States.

出版信息

J Chem Theory Comput. 2025 Feb 11;21(3):1194-1202. doi: 10.1021/acs.jctc.4c01384. Epub 2025 Jan 30.

DOI:10.1021/acs.jctc.4c01384
PMID:39883848
Abstract

Accurately calculating the diradical character () of molecular systems remains a significant challenge due to the scarcity of experimental data and the inherent multireference nature of the electronic structure. In this study, various quantum mechanical approaches, including broken symmetry density functional theory (BS-DFT), spin-flip time-dependent density functional theory (SF-TDDFT), mixed-reference spin-flip time-dependent density functional theory (MRSF-TDDFT), complete active space self-consistent field (CASSCF), complete active space second-order perturbation theory (CASPT2), and multiconfigurational pair-density functional theory (MCPDFT), are employed to compute the singlet-triplet energy gaps () and values in Thiele, Chichibabin, and Müller analogous diradicals. By systematically comparing the results from these computational methods, we identify optimally tuned long-range corrected functional CAM-B3LYP in the BS-DFT framework as a most efficient method for accurately and affordably predicting both and values. Additionally, our results demonstrate that (i) MRSF-TDDFT performs much better than SF-TDDFT; (ii) the MCPDFT method is robust in determining with minimal dependence on the choice of active space. These findings provide insight into the electronic structure and diradical character of the investigated molecules and highlight effective computational strategies for future studies in this domain. Thus, this work not only advances our understanding of diradical systems but also offers practical guidelines for their computational investigation.

摘要

由于实验数据稀缺以及电子结构固有的多参考性质,准确计算分子体系的双自由基特征()仍然是一项重大挑战。在本研究中,采用了各种量子力学方法,包括破缺对称性密度泛函理论(BS-DFT)、自旋翻转含时密度泛函理论(SF-TDDFT)、混合参考自旋翻转含时密度泛函理论(MRSF-TDDFT)、完全活性空间自洽场(CASSCF)、完全活性空间二阶微扰理论(CASPT2)和多组态对密度泛函理论(MCPDFT),来计算蒂勒、奇奇巴宾和米勒类似双自由基中的单重态-三重态能隙()和值。通过系统比较这些计算方法的结果,我们确定了BS-DFT框架中经过优化调整的长程校正泛函CAM-B3LYP是一种最有效的方法,能够准确且经济地预测和值。此外,我们的结果表明:(i)MRSF-TDDFT的表现远优于SF-TDDFT;(ii)MCPDFT方法在确定时具有很强的稳健性,对活性空间选择的依赖性最小。这些发现为所研究分子的电子结构和双自由基特征提供了深入了解,并突出了该领域未来研究的有效计算策略。因此,这项工作不仅推进了我们对双自由基体系的理解,还为其计算研究提供了实用指南。

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