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光激发三自旋系统中交换相互作用的阐明——一种二阶微扰方法。

Elucidation of the exchange interaction in photoexcited three-spin systems - a second-order perturbational approach.

作者信息

Franz Michael, Neese Frank, Richert Sabine

机构信息

Institute of Physical Chemistry, University of Freiburg, Albertstraße 21, 79104 Freiburg, Germany.

Max-Planck-Institut für Kohlenforschung, Kaiser-Wilhelm-Platz 1, 45470 Mülheim an der Ruhr, Germany.

出版信息

Phys Chem Chem Phys. 2024 Oct 2;26(38):25005-25020. doi: 10.1039/d4cp03402c.

Abstract

Photogenerated three-spin systems show great potential for applications in the field of molecular spintronics. In these systems, the exchange interaction in the electronically excited state dictates their magnetic properties. To design such molecules for specific applications, it is thus important to understand how the sign and magnitude of the exchange interaction can be controlled. For this purpose, we developed a perturbational approach, based on previous work by the groups of de Loth and Malrieu, that allows for the direct calculation of the exchange interaction and its individual contributions up to the second order and implemented it within the ORCA program package. Within this manuscript, we present the derivation of the individual second-order contributions, provide an overview of the implementation of the code and illustrate its performance. We show that, using this perturbational approach in combination with state-averaged orbitals from minimal active space calculations, accurate values for the exchange interaction can be computed for organic nitroxides. Further, we demonstrate that the weight of the ionic determinants in the orbital optimisation of the CASSCF procedure is crucial for the computation of accurate exchange couplings. In the case of photoexcited chromophore-radical systems, we find that the dynamic spin polarisation effect constitutes the most important contribution to the exchange interaction, whereby the sign of this contribution determines the sign of the exchange interaction.

摘要

光生三自旋体系在分子自旋电子学领域具有巨大的应用潜力。在这些体系中,电子激发态下的交换相互作用决定了它们的磁性。为了设计适用于特定应用的此类分子,了解如何控制交换相互作用的符号和大小就显得尤为重要。为此,我们基于德洛特(de Loth)和马尔里厄(Malrieu)团队之前的工作,开发了一种微扰方法,该方法能够直接计算交换相互作用及其直至二阶的各个贡献,并将其在ORCA程序包中实现。在本论文中,我们给出了各个二阶贡献的推导过程,概述了代码的实现情况,并展示了其性能。我们表明,将这种微扰方法与最小活性空间计算得到的状态平均轨道相结合,可以计算出有机氮氧化物交换相互作用的精确值。此外,我们证明了CASSCF程序的轨道优化中离子行列式的权重对于精确交换耦合的计算至关重要(对计算精确的交换耦合至关重要)。在光激发发色团 - 自由基体系的情况下,我们发现动态自旋极化效应是交换相互作用的最重要贡献,该贡献的符号决定了交换相互作用的符号。

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