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电子结构建模和结结构对第一性原理手性诱导自旋选择性的影响。

Influence of Electronic Structure Modeling and Junction Structure on First-Principles Chiral Induced Spin Selectivity.

作者信息

Zöllner Martin Sebastian, Saghatchi Aida, Mujica Vladimiro, Herrmann Carmen

机构信息

Department of Chemistry, University of Hamburg, 20146 Hamburg, Germany.

School of Molecular Sciences, Arizona State University, Tempe, Arizona 85287-1604, United States.

出版信息

J Chem Theory Comput. 2020 Dec 8;16(12):7357-7371. doi: 10.1021/acs.jctc.0c00621. Epub 2020 Nov 9.

Abstract

We have carried out a comprehensive study of the influence of electronic structure modeling and junction structure description on the first-principles calculation of the spin polarization in molecular junctions caused by the chiral induced spin selectivity (CISS) effect. We explore the limits and the sensitivity to modeling decisions of a Landauer/Green's function/two-component density functional theory approach to CISS. We find that although the CISS effect is entirely attributed in the literature to molecular spin filtering, spin-orbit coupling being partially inherited from the metal electrodes plays an important role in our calculations on ideal carbon helices, even though this effect cannot explain the experimental conductance results. Its magnitude depends considerably on the shape, size, and material of the metal clusters modeling the electrodes. Also, a pronounced dependence on the specific description of exchange interaction and spin-orbit coupling is manifest in our approach. This is important because the interplay between exchange effects and spin-orbit coupling may play an important role in the description of the junction magnetic response. Our calculations are relevant for the whole field of spin-polarized electron transport and electron transfer, because there is still an open discussion in the literature about the detailed underlying mechanism and the magnitude of physical parameters that need to be included to achieve a consistent description of the CISS effect: seemingly good quantitative agreement between simulation and the experiment can be caused by error compensation, because spin polarization as contained in a Landauer/Green's function/two-component density functional theory approach depends strongly on computational and structural parameters.

摘要

我们已经对电子结构建模和结结构描述对手性诱导自旋选择性(CISS)效应引起的分子结中自旋极化的第一性原理计算的影响进行了全面研究。我们探索了一种用于CISS的朗道尔/格林函数/双组分密度泛函理论方法对建模决策的局限性和敏感性。我们发现,尽管在文献中CISS效应完全归因于分子自旋过滤,但从金属电极部分继承的自旋轨道耦合在我们对理想碳螺旋的计算中起着重要作用,尽管这种效应无法解释实验电导结果。其大小在很大程度上取决于模拟电极的金属簇的形状、大小和材料。此外,在我们的方法中,对交换相互作用和自旋轨道耦合的具体描述也有明显的依赖性。这很重要,因为交换效应和自旋轨道耦合之间的相互作用可能在结磁响应的描述中起重要作用。我们的计算与自旋极化电子输运和电子转移的整个领域相关,因为文献中仍在对详细的潜在机制以及为实现对CISS效应的一致描述所需包含的物理参数的大小进行公开讨论:模拟与实验之间看似良好的定量一致性可能是由误差补偿引起的,因为朗道尔/格林函数/双组分密度泛函理论方法中包含的自旋极化强烈依赖于计算和结构参数。

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