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反铁磁NiO中纳米尺度距离下类超光速磁振子传播

Superluminal-like magnon propagation in antiferromagnetic NiO at nanoscale distances.

作者信息

Lee Kyusup, Lee Dong-Kyu, Yang Dongsheng, Mishra Rahul, Kim Dong-Jun, Liu Sheng, Xiong Qihua, Kim Se Kwon, Lee Kyung-Jin, Yang Hyunsoo

机构信息

Department of Electrical and Computer Engineering, National University of Singapore, Singapore, Singapore.

Department of Materials Science and Engineering, Korea University, Seoul, Korea.

出版信息

Nat Nanotechnol. 2021 Dec;16(12):1337-1341. doi: 10.1038/s41565-021-00983-4. Epub 2021 Oct 25.

Abstract

Magnon-mediated angular-momentum flow in antiferromagnets may become a design element for energy-efficient, low-dissipation and high-speed spintronic devices. Owing to their low energy dissipation, antiferromagnetic magnons can propagate over micrometre distances. However, direct observation of their high-speed propagation has been elusive due to the lack of sufficiently fast probes. Here we measure the antiferromagnetic magnon propagation in the time domain at the nanoscale (≤50 nm) with optical-driven terahertz emission. In non-magnetic-BiTe/antiferromagnetic-insulator-NiO/ferromagnetic-Co trilayers, we observe a magnon velocity of ~650 km s in the NiO layer. This velocity far exceeds previous estimations of the maximum magnon group velocity of ~40 km s, which were based on the magnon dispersion measurements of NiO using inelastic neutron scattering. Our theory suggests that for magnon propagation at the nanoscale, a finite damping makes the dispersion anomalous for small magnon wavenumbers and yields a superluminal-like magnon velocity. Given the generality of finite dissipation in materials, our results strengthen the prospects of ultrafast nanodevices using antiferromagnetic magnons.

摘要

磁振子介导的反铁磁体中的角动量流可能成为节能、低耗散和高速自旋电子器件的一个设计元素。由于其低能量耗散,反铁磁磁振子可以在微米距离上传播。然而,由于缺乏足够快的探测手段,对其高速传播的直接观测一直难以实现。在这里,我们利用光驱动太赫兹发射在纳米尺度(≤50纳米)的时域中测量反铁磁磁振子的传播。在非磁性BiTe/反铁磁绝缘体NiO/铁磁Co三层结构中,我们在NiO层中观测到磁振子速度约为650千米/秒。这个速度远远超过了之前基于使用非弹性中子散射对NiO进行磁振子色散测量所估计的约40千米/秒的最大磁振子群速度。我们的理论表明,对于纳米尺度的磁振子传播,有限的阻尼使得小磁振子波数的色散反常,并产生超光速样磁振子速度。鉴于材料中有限耗散的普遍性,我们的结果增强了使用反铁磁磁振子的超快纳米器件的前景。

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