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三角烯二聚体中的磁耦合控制

Magnetic Coupling Control in Triangulene Dimers.

作者信息

Yu Hongde, Heine Thomas

机构信息

Faculty of Chemistry and Food Chemistry, Technische Universität Dresden, Bergstraße 66c, 01062 Dresden, Germany.

Institute of Resource Ecology, Helmholtz Zentrum Dresden-Rossendorf, Permoserstraße 15, 04318 Leipzig, Germany.

出版信息

J Am Chem Soc. 2023 Sep 6;145(35):19303-19311. doi: 10.1021/jacs.3c05178. Epub 2023 Aug 23.

Abstract

Metal-free magnetism remains an enigmatic field, offering prospects for unconventional magnetic and electronic devices. In the pursuit of such magnetism, triangulenes, endowed with inherent spin polarization, are promising candidates to serve as monomers to construct extended structures. However, controlling and enhancing the magnetic interactions between the monomers persist as a significant challenge in molecular spintronics, as so far only weak antiferromagnetic coupling through the linkage has been realized, hindering their room temperature utilization. Herein, we investigate 24 triangulene dimers using first-principles calculations and demonstrate their tunable magnetic coupling (), achieving unprecedented strong values of up to -144 meV in a non-Kekulé dimer. We further establish a positive correlation between bandgap, electronic coupling, and antiferromagnetic interaction, thereby providing molecular-level insights into enhancing magnetic interactions. By twisting the molecular fragments, we demonstrate an effective and feasible approach to control both the sign and strength of by tuning the balance between potential and kinetic exchanges. We discover that can be substantially boosted at planar configurations up to -198 meV. We realize ferromagnetic coupling in nitrogen-doped triangulene dimers at both planar and largely twisted configurations, representing the first example of ferromagnetic triangulene dimers that cannot be predicted by the Ovchinnikov rule. This work thus provides a practical strategy for augmenting magnetic coupling and open up new avenues for metal-free ferromagnetism.

摘要

无金属磁性仍是一个神秘的领域,为非常规磁性和电子器件提供了前景。在追求这种磁性的过程中,具有固有自旋极化的三角烯是构建扩展结构的有前途的单体候选物。然而,控制和增强单体之间的磁相互作用仍然是分子自旋电子学中的一个重大挑战,因为到目前为止,仅通过连接实现了弱反铁磁耦合,阻碍了它们在室温下的应用。在此,我们使用第一性原理计算研究了24种三角烯二聚体,并证明了它们可调的磁耦合(),在一个非凯库勒二聚体中实现了高达-144 meV的前所未有的强值。我们进一步建立了带隙、电子耦合和反铁磁相互作用之间的正相关关系,从而为增强磁相互作用提供了分子水平的见解。通过扭曲分子片段,我们展示了一种有效且可行的方法,通过调节势能和动能交换之间的平衡来控制的符号和强度。我们发现,在平面构型下,可大幅提高至-198 meV。我们在平面和大扭曲构型的氮掺杂三角烯二聚体中实现了铁磁耦合,这代表了第一个不能用奥夫钦尼科夫规则预测的铁磁三角烯二聚体的例子。因此,这项工作为增强磁耦合提供了一种实用策略,并为无金属铁磁性开辟了新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4d93/10485925/f949cae13e0a/ja3c05178_0001.jpg

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