Spin migration in density functional theory: Energy, potential, and density perspectives.

IF 3.1 2区 化学 Q3 CHEMISTRY, PHYSICAL Journal of Chemical Physics Pub Date : 2025-03-21 DOI:10.1063/5.0241200
Alon Hayman, Nevo Levy, Yuli Goshen, Malachi Fraenkel, Eli Kraisler, Tamar Stein
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Abstract

Spin is a fundamental property of any many-electron system. The ability of density functional theory to accurately predict the physical properties of a system, while varying its spin, is crucial for describing magnetic materials and high-spin molecules, spin flips, and magnetization and demagnetization processes. Within density functional theory, when using various exchange-correlation approximations, the exact dependence of the energy on the spin often deviates from the exact constant or piecewise-linear behavior, which is directly related to the problem of strong (static) correlation and challenges the description of molecular dissociation. In this paper, we study the behavior of the energy, the frontier Kohn-Sham (KS) and generalized KS (GKS) orbitals, the KS potentials, and the electron density, with respect to fractional spin, in different atomic systems. We analyze seven standard exchange-correlation functionals and find two main scenarios of deviation from the expected exact results. We clearly recognize a jump in the frontier orbital energies upon spin variation in the exact exchange and in hybrid functionals, as well as the related plateau in the corresponding KS potential, when using the optimized effective potential method within the KS scheme. When calculations are performed using the GKS approach, no jumps are observed, as expected. Moreover, we demonstrate that for high-spin systems, a full three-dimensional treatment is crucial; the spherical approximation commonly used in atoms causes a qualitative deviation. Our results are instrumental for the assessment of the quality of existing approximations from a new perspective and for the development of advanced functionals with sensitivity to magnetic properties.

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密度泛函理论中的自旋迁移:能量、电势和密度视角。
自旋是任何多电子系统的基本性质。密度泛函理论在改变自旋的情况下准确预测系统物理性质的能力,对于描述磁性材料和高自旋分子、自旋翻转以及磁化和退磁过程至关重要。在密度泛函理论中,当使用各种交换相关近似时,能量对自旋的确切依赖往往偏离精确的常数或分段线性行为,这直接关系到强(静态)相关问题,并对分子解离的描述提出了挑战。本文研究了不同原子体系中能量、前沿Kohn-Sham (KS)和广义KS (GKS)轨道、KS势和电子密度与分数自旋的关系。我们分析了七个标准的交换相关函数,并找到了偏离预期准确结果的两个主要情况。在KS方案中使用优化后的有效势方法时,我们清楚地认识到,在精确交换和杂化泛函中,前沿轨道能量随自旋变化而发生跳跃,相应的KS势也有相应的平台。当使用GKS方法执行计算时,正如预期的那样,没有观察到跳跃。此外,我们证明,对于高自旋系统,一个完整的三维处理是至关重要的;通常用于原子的球形近似会引起定性偏差。我们的结果有助于从新的角度评估现有近似的质量,并有助于开发具有磁性敏感性的高级泛函。
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来源期刊
Journal of Chemical Physics
Journal of Chemical Physics 物理-物理:原子、分子和化学物理
CiteScore
7.40
自引率
15.90%
发文量
1615
审稿时长
2 months
期刊介绍: The Journal of Chemical Physics publishes quantitative and rigorous science of long-lasting value in methods and applications of chemical physics. The Journal also publishes brief Communications of significant new findings, Perspectives on the latest advances in the field, and Special Topic issues. The Journal focuses on innovative research in experimental and theoretical areas of chemical physics, including spectroscopy, dynamics, kinetics, statistical mechanics, and quantum mechanics. In addition, topical areas such as polymers, soft matter, materials, surfaces/interfaces, and systems of biological relevance are of increasing importance. Topical coverage includes: Theoretical Methods and Algorithms Advanced Experimental Techniques Atoms, Molecules, and Clusters Liquids, Glasses, and Crystals Surfaces, Interfaces, and Materials Polymers and Soft Matter Biological Molecules and Networks.
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