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非共线反铁磁体MnSn中的大型超快调制沃伊特效应

Large ultrafast-modulated Voigt effect in noncollinear antiferromagnet MnSn.

作者信息

Zhao H C, Xia H, Hu S, Lv Y Y, Zhao Z R, He J, Liang E, Ni G, Chen L Y, Qiu X P, Zhou S M, Zhao H B

机构信息

Key Laboratory of Micro and Nano Photonic Structures (Ministry of Education), and Shanghai Ultra-precision Optical Manufacturing Engineering Research Center, Department of Optical Science and Engineering, Fudan University, Shanghai, China.

Department of Physics, Fudan University, Shanghai, China.

出版信息

Nat Commun. 2021 Sep 6;12(1):5266. doi: 10.1038/s41467-021-25654-9.

Abstract

The time-resolved magneto-optical (MO) Voigt effect can be utilized to study the Néel order dynamics in antiferromagnetic (AFM) materials, but it has been limited for collinear AFM spin configuration. Here, we have demonstrated that in MnSn with an inverse triangular spin structure, the quench of AFM order by ultrafast laser pulses can result in a large Voigt effect modulation. The modulated Voigt angle is significantly larger than the polarization rotation due to the crystal-structure related linear dichroism effect and the modulated MO Kerr angle arising from the ferroic ordering of cluster magnetic octupole. The AFM order quench time shows negligible change with increasing temperature approaching the Néel temperature (T), in markedly contrast with the pronounced slowing-down demagnetization typically observed in conventional magnetic materials. This atypical behavior can be explained by the influence of weakened Dzyaloshinskii-Moriya interaction rather than the smaller exchange splitting on the diminished AFM order near T. The temperature-insensitive ultrafast spin manipulation can pave the way for high-speed spintronic devices either working at a wide range of temperature or demanding spin switching near T.

摘要

时间分辨磁光(MO)维格特效应可用于研究反铁磁(AFM)材料中的奈尔序动力学,但它在共线AFM自旋构型方面受到限制。在此,我们证明了在具有反三角自旋结构的MnSn中,超快激光脉冲对AFM序的猝灭可导致大的维格特效应调制。调制的维格特角明显大于由晶体结构相关的线性二向色性效应引起的偏振旋转以及由簇磁八极子的铁性有序产生的调制MO克尔角。随着温度接近奈尔温度(T),AFM序猝灭时间的变化可忽略不计,这与传统磁性材料中通常观察到的明显的退磁减速形成显著对比。这种非典型行为可以用减弱的Dzyaloshinskii-Moriya相互作用而非较小的交换分裂对接近T时AFM序减弱的影响来解释。对温度不敏感的超快自旋操控可为在宽温度范围内工作或在接近T时需要自旋切换的高速自旋电子器件铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d03/8421456/1ad0562ce52c/41467_2021_25654_Fig1_HTML.jpg

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