Toward Efficient and Unified Treatment of Static and Dynamic Correlations in Generalized Kohn–Sham Density Functional Theory

IF 8.5 Q1 CHEMISTRY, MULTIDISCIPLINARY
Yizhen Wang, Zihan Lin, Runhai Ouyang, Bin Jiang, Igor Ying Zhang* and Xin Xu*, 
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Abstract

Accurate description of the static correlation poses a persistent challenge in electronic structure theory, particularly when it has to be concurrently considered with the dynamic correlation. We develop here a method in the generalized Kohn–Sham density functional theory (DFT) framework, named R-xDH7-SCC15, which achieves an unprecedented accuracy in capturing the static correlation, while maintaining a good description of the dynamic correlation on par with the state-of-the-art DFT and wave function theory methods, all grounded in the same single-reference black-box methodology. Central to R-xDH7-SCC15 is a general-purpose static correlation correction (SCC) model applied to the renormalized XYG3-type doubly hybrid method (R-xDH7). The SCC model development involves a hybrid machine learning strategy that integrates symbolic regression with nonlinear parameter optimization, aiming to achieve a balance between generalization capability, numerical accuracy, and interpretability. Extensive benchmark studies confirm the robustness and broad applicability of R-xDH7-SCC15 across a diverse array of main-group chemical scenarios. Notably, it displays exceptional aptitude in accurately characterizing intricate reaction kinetics and dynamic processes in regions distant from equilibrium, where the influence of static correlation is most profound. Its capability to consistently and efficiently predict the whole energy profiles, activation barriers, and reaction pathways within a user-friendly “black-box” framework represents an important advance in the field of electronic structure theory.

Abstract Image

实现广义科恩-沙姆密度泛函理论中静态和动态相关性的高效统一处理
准确描述静态相关性是电子结构理论中的一项长期挑战,尤其是在必须同时考虑动态相关性的情况下。我们在这里开发了一种广义 Kohn-Sham 密度泛函理论(DFT)框架下的方法,命名为 R-xDH7-SCC15,它在捕捉静态相关性方面达到了前所未有的精确度,同时保持了对动态相关性的良好描述,与最先进的 DFT 和波函数理论方法相当,所有这些都基于相同的单参考黑箱方法。R-xDH7-SCC15 的核心是一个通用的静态相关性校正(SCC)模型,它应用于重正化 XYG3 型双混合方法(R-xDH7)。SCC 模型的开发采用了混合机器学习策略,将符号回归与非线性参数优化相结合,旨在实现泛化能力、数值精度和可解释性之间的平衡。广泛的基准研究证实了 R-xDH7-SCC15 在各种主族化学情景中的稳健性和广泛适用性。值得注意的是,它在准确描述远离平衡区域的复杂反应动力学和动态过程方面表现出了非凡的能力,在这些区域,静态相关性的影响最为深刻。它能够在用户友好的 "黑盒 "框架内持续有效地预测整个能量曲线、活化障碍和反应路径,是电子结构理论领域的一个重要进步。
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CiteScore
9.10
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