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解锁单磁中心修饰三角烯体系中的超快自旋转移

Unlocking Ultrafast Spin Transfer in Single-Magnetic-Center-Decorated Triangulene Systems.

作者信息

Xu Shuai, Zhang Yiming, Zang Congfei, Liu Jing, Jin Wei, Lefkidis Georgios, Hübner Wolfgang, Li Chun

机构信息

Department of Engineering Mechanics, Northwestern Polytechnical University, Xi'an 710072, China.

Research & Development Institute of Northwestern Polytechnical University in Shenzhen, Shenzhen 518057, China.

出版信息

J Phys Chem Lett. 2024 Apr 11;15(14):3929-3937. doi: 10.1021/acs.jpclett.4c00469. Epub 2024 Apr 3.

Abstract

Triangulene, as a typical open-shell graphene fragment, has attracted widespread attention for nanospintronics, promising to serve as building blocks in spin-logic units. Here, using calculations, we systematically study the laser-induced ultrafast spin-dynamic processes on triangulene nanoflakes, decorated with a transition-metal atom. The results reveal a competition between the induced magnetic center and the carbon edge of the triangulene, resulting in the coexistence of dual spin-density-distribution patterns on such single-magnetic-center systems, thus opening up possibilities of complex spin-dynamic scenarios beyond the spin flip. Interestingly, no matter what direction the spin points to, it is possible to achieve reversible spin-transfer processes using the same laser pulse. Increasing the pool of elementary processes to contain not only spin-direction-dependent but also spin-direction-independent scenarios allows for more versatile spin-logic operations, including classical handling of information and quantum computing. In the present work, we suggest downscaling nanospintronic devices by integrating triangulene-based nanostructures.

摘要

三角烯作为一种典型的开壳层石墨烯片段,在纳米自旋电子学领域引起了广泛关注,有望成为自旋逻辑单元的构建模块。在此,我们通过计算系统地研究了过渡金属原子修饰的三角烯纳米片上的激光诱导超快自旋动力学过程。结果揭示了诱导磁中心与三角烯碳边缘之间的竞争,导致在这种单磁中心系统上存在双重自旋密度分布模式,从而开启了超越自旋翻转的复杂自旋动力学场景的可能性。有趣的是,无论自旋指向哪个方向,使用相同的激光脉冲都有可能实现可逆的自旋转移过程。增加基本过程的种类,使其不仅包括依赖自旋方向的场景,还包括不依赖自旋方向的场景,这使得自旋逻辑操作更加通用,包括经典信息处理和量子计算。在本工作中,我们建议通过整合基于三角烯的纳米结构来缩小纳米自旋电子器件的尺寸。

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