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补偿亚铁磁绝缘体中手性磁振子的电激发与检测

Electrical Excitation and Detection of Chiral Magnons in a Compensated Ferrimagnetic Insulator.

作者信息

Wang Ledong, Shen Laichuan, Bai Hao, Zhou Heng-An, Shen Ka, Jiang Wanjun

机构信息

Tsinghua University, State Key Laboratory of Low-Dimensional Quantum Physics and Department of Physics, Beijing 100084, China.

Tsinghua University, Frontier Science Center for Quantum Information, Beijing 100084, China.

出版信息

Phys Rev Lett. 2024 Oct 18;133(16):166705. doi: 10.1103/PhysRevLett.133.166705.

Abstract

Magnon chirality refers to the precessional handedness of magnetization around the external magnetic field, which is fixed as right-handed in ferromagnets. Compensated ferrimagnets accommodate parallel and antiparallel configurations of net magnetization and angular momentum, and thus serve as an ideal platform for studying magnon chirality. Through performing spin-torque ferromagnetic resonance experiments, we experimentally study the reversal of low-frequency magnon chirality across the magnetization and angular momentum compensation temperatures in a Gd_{3}Fe_{5}O_{12}/Pt bilayer. In particular, we demonstrate that dampinglike spin torque could sensitively excite and detect the reversal of low-frequency magnon chirality. By solving the coupled Landau-Lifshitz-Gilbert equations, the close correlation between the reversal of low-frequency magnon chirality and the sign of net angular momenta is established. The electrical excitation and detection of low-frequency magnon chirality in compensated ferrimagnetic insulators could be useful for building chiral spintronics.

摘要

磁振子手性是指磁化强度围绕外磁场的进动方向,在铁磁体中固定为右手性。补偿亚铁磁体容纳净磁化强度和角动量的平行和反平行配置,因此是研究磁振子手性的理想平台。通过进行自旋扭矩铁磁共振实验,我们实验研究了Gd₃Fe₅O₁₂/Pt双层中低频磁振子手性在磁化强度和角动量补偿温度下的反转。特别地,我们证明了类阻尼自旋扭矩可以灵敏地激发和检测低频磁振子手性的反转。通过求解耦合的朗道-里夫希茨-吉尔伯特方程,建立了低频磁振子手性反转与净角动量符号之间的紧密关联。在补偿亚铁磁绝缘体中对低频磁振子手性进行电激发和检测可能有助于构建手性自旋电子学。

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