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二维反铁磁体CrSBr中的自旋-机械耦合

Spin-Mechanical Coupling in 2D Antiferromagnet CrSBr.

作者信息

Fei Fan, Mao Yulu, Fang Wuzhang, Liu Wenhao, Rollins Jack P, Kondusamy Aswin L N, Lv Bing, Ping Yuan, Wang Ying, Xiao Jun

机构信息

Department of Materials Science and Engineering, University of Wisconsin-Madison, Madison, Wisconsin 53706, United States.

Department of Electrical and Computer Engineering, University of Wisconsin-Madison, Madison, Wisconsin 53706, United States.

出版信息

Nano Lett. 2024 Aug 28;24(34):10467-10474. doi: 10.1021/acs.nanolett.4c01751. Epub 2024 Aug 3.

Abstract

Spin-mechanical coupling is vital in diverse fields including spintronics, sensing, and quantum transduction. Two-dimensional (2D) magnetic materials provide a unique platform for investigating spin-mechanical coupling, attributed to their mechanical flexibility and novel spin orderings. However, studying their spin-mechanical coupling presents challenges in probing mechanical deformation and thermodynamic property changes at the nanoscale. Here we use nano-optoelectromechanical interferometry to mechanically detect the phase transition and magnetostriction effect in multilayer CrSBr, an air-stable antiferromagnet with large magnon-exciton coupling. The transitions among antiferromagnetism, spin-canted ferromagnetism, and paramagnetism are visualized. Nontrivial magnetostriction coefficient 2.3 × 10 and magnetoelastic coupling strength on the order of 10 J/m have been found. Moreover, we demonstrate the substantial tunability of the magnetoelastic constant by nearly 50% via gate-induced strain. Our findings demonstrate the strong spin-mechanical coupling in CrSBr and pave the way for developing sensitive magnetic sensing and efficient quantum transduction at the atomically thin limit.

摘要

自旋-机械耦合在包括自旋电子学、传感和量子转导在内的多个领域至关重要。二维(2D)磁性材料因其机械柔韧性和新颖的自旋排序,为研究自旋-机械耦合提供了一个独特的平台。然而,研究它们的自旋-机械耦合在探测纳米尺度的机械变形和热力学性质变化方面存在挑战。在此,我们使用纳米光机电干涉测量法来机械探测多层CrSBr中的相变和磁致伸缩效应,CrSBr是一种具有大磁振子-激子耦合的空气稳定反铁磁体。反铁磁性、自旋倾斜铁磁性和顺磁性之间的转变得以可视化。发现了非平凡的磁致伸缩系数2.3×10以及约为10 J/m量级的磁弹性耦合强度。此外,我们通过栅极诱导应变证明了磁弹性常数可大幅调谐近50%。我们的研究结果证明了CrSBr中存在强自旋-机械耦合,并为在原子级薄极限下开发灵敏的磁传感和高效的量子转导铺平了道路。

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