拓展量子化学研究的视野:MRSF-TDDFT的多用途能力。

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Accounts of Chemical Research Pub Date : 2025-01-21 Epub Date: 2025-01-01 DOI:10.1021/acs.accounts.4c00640
Seunghoon Lee, Woojin Park, Cheol Ho Choi
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引用次数: 0

摘要

虽然传统的量子化学理论长期以来一直是研究的中心,但它们在应用于复杂情况时遇到了局限性。密度泛函理论(DFT)和时间依赖密度泛函理论(TDDFT)这两种最广泛使用的量子化学方法在电子相关性相对较弱的情况下表现良好,例如闭壳系统的基态极小值(frank - condon区)。然而,在要求更高的场景中,它们的适用性会减弱。这些限制来自于DFT对单确定性框架的依赖,以及TDDFT无法在其响应空间中捕获双激励和高激励构型。最近发展的多参考自旋翻转时相关密度泛函理论(MRSF-TDDFT)成功地克服了这些挑战,推动了DFT方法的界限。MRSF-TDDFT用途广泛,适用于各种应用,包括断键和成键反应、双自由基等开壳单线态体系,以及更准确地描述过渡态。它还为圆锥交叉口(CoIns)提供了正确的拓扑结构,并将双重激励纳入响应空间,以便更精确地描述激发态。借助它的形式框架,也可以很容易地进行精确的x射线吸收预测的核孔弛豫。值得注意的是,MRSF-TDDFT实现了基态和激发态的平等描述,其双参考框架确保了高精度的动态和非动态电子相关性的平衡处理。在预测任务中,例如计算绝热单重态-三重态间隙,MRSF-TDDFT可以达到与计算成本更高的耦合聚类方法相当的精度。MRSF-TDDFT准确捕获了在TDDFT中观测到的H2缺失的双激发态,并重现了正确的渐近断键势能面。此外,利用MRSF-TDDFT成功回收了TDDFT和CASSCF (Complete-Active Space Self-Consistent Field)方法错过的丁二烯coin,获得了与高水平理论一致的结果,这是成功研究光化学过程的一个重要方面。此外,MRSF-TDDFT有效地解决了CASSCF由于缺少动态相关性而高估亮态(离子态)的常见问题。尽管有许多进步,但MRSF-TDDFT保持了传统TDDFT的计算效率,使其成为常规计算的实用工具。此外,研究表明,MRSF-TDDFT的预测精度可以通过开发定制的交换相关泛函进一步提高,为创建新的专门泛函铺平道路。因此,凭借其卓越的多功能性、高精度和计算实用性,这种创新方法极大地扩展了科学家探索复杂分子行为和设计先进材料的能力,包括在光生物学、有机led、光伏和自旋电子学等方面的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Expanding Horizons in Quantum Chemical Studies: The Versatile Power of MRSF-TDDFT.

ConspectusWhile traditional quantum chemical theories have long been central to research, they encounter limitations when applied to complex situations. Two of the most widely used quantum chemical approaches, Density Functional Theory (DFT) and Time-Dependent Density Functional Theory (TDDFT), perform well in cases with relatively weak electron correlation, such as the ground-state minima of closed-shell systems (Franck-Condon region). However, their applicability diminishes in more demanding scenarios. These limitations arise from the reliance of DFT on a single-determinantal framework and the inability of TDDFT to capture double and higher excited configurations in its response space.The recently developed Multi-Reference Spin-Flip Time-Dependent Density Functional Theory (MRSF-TDDFT) successfully overcomes these challenges, pushing the boundaries of DFT methods. MRSF-TDDFT is exceptionally versatile, making it suitable for various applications, including bond-breaking and bond-forming reactions, open-shell singlet systems such as diradicals, and a more accurate depiction of transition states. It also provides the correct topology for conical intersections (CoIns) and incorporates double excitations into the response space for a more precise description of excited states. With the help of its formal framework, core-hole relaxation for accurate X-ray absorption prediction can be also done readily. Notably, MRSF-TDDFT achieves an equal footing description of ground and excited states, with its dual-reference framework ensuring a balanced treatment of both dynamic and nondynamic electron correlations for high accuracy.In predictive tasks, such as calculating adiabatic singlet-triplet gaps, MRSF-TDDFT achieves accuracy comparable to that of far more computationally expensive coupled-cluster methods. The missing doubly excited state of H2 observed in TDDFT is accurately captured by MRSF-TDDFT, which also reproduces the correct asymptotic bond-breaking potential energy surface. Furthermore, the CoIns of butadiene, missed by both TDDFT and Complete-Active Space Self-Consistent Field (CASSCF) methods, are successfully recovered by MRSF-TDDFT, achieving results consistent with high-level theories, an important aspect for successful study of photochemical processes. Additionally, the common issue of CASSCF overestimating bright states (ionic states) due to the missing dynamic correlation is effectively resolved by MRSF-TDDFT.Despite its numerous advancements, MRSF-TDDFT retains the computational efficiency of conventional TDDFT, making it a practical tool for routine calculations. In addition, it has been demonstrated that the prediction accuracy of MRSF-TDDFT can be further enhanced through the development of tailor-made exchange-correlation functionals, paving the way for the creation of new, specialized functionals. Consequently, with its remarkable versatility, high accuracy, and computational practicality, this innovative method significantly expands scientists' ability to explore complex molecular behaviors and design advanced materials, including applications in photobiology, organic LEDs, photovoltaics, and spintronics, to name a few.

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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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