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Spin current from sub-terahertz-generated antiferromagnetic magnons

机译:亚太赫兹产生的反铁磁磁振子的自旋电流

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摘要

Spin dynamics in antiferromagnets has much shorter timescales than in ferromagnets, offering attractive properties for potential applications in ultrafast devices~(1-3). However, spin-current generation via antiferromagnetic resonance and simultaneous electrical detection by the inverse spin Hall effect in heavy metals have not yet been explicitly demonstrated~(4-6). Here we report sub-terahertz spin pumping in heterostructures of a uniaxial antiferromagnetic Cr_(2)O_(3)crystal and a heavy metal (Pt or Ta in its β phase). At 0.240 terahertz, the antiferromagnetic resonance in Cr_(2)O_(3)occurs at about 2.7 tesla, which excites only right-handed magnons. In the spin-canting state, another resonance occurs at 10.5 tesla from the precession of induced magnetic moments. Both resonances generate pure spin currents in the heterostructures, which are detected by the heavy metal as peaks or dips in the open-circuit voltage. The pure-spin-current nature of the electrically detected signals is unambiguously confirmed by the reversal of the voltage polarity observed under two conditions: when switching the detector metal from Pt to Ta, reversing the sign of the spin Hall angle~(7-9), and when flipping the magnetic-field direction, reversing the magnon chirality~(4,5). The temperature dependence of the electrical signals at both resonances suggests that the spin current contains both coherent and incoherent magnon contributions, which is further confirmed by measurements of the spin Seebeck effect and is well described by a phenomenological theory. These findings reveal the unique characteristics of magnon excitations in antiferromagnets and their distinctive roles in spin-charge conversion in the high-frequency regime.
机译:与铁磁体相比,反铁磁体中的自旋动力学具有更短的时间尺度,为超快器件〜(1-3)中的潜在应用提供了诱人的特性。然而,在重金属中通过反铁磁共振产生自旋电流以及通过逆自旋霍尔效应同时进行电检测尚未得到明确证明(4-6)。在这里,我们报道了单轴反铁磁Cr_(2)O_(3)晶体和重金属(β相中的Pt或Ta)的异质结构中的太赫兹自旋泵浦。在0.240太赫兹时,Cr_(2)O_(3)中的反铁磁共振发生在大约2.7特斯拉处,仅激发右手的磁振子。在自旋倾斜状态下,由于感应磁矩的进动,在10.5特斯拉处发生了另一个共振。两种共振都会在异质结构中生成纯自旋电流,重金属会以开路电压的峰值或谷值检测到纯自旋电流。通过在以下两种情况下观察到的电压极性的反转,可以清楚地确认电检测信号的纯自旋电流性质:将检测器金属从Pt切换到Ta时,将自旋霍尔角的符号反转(7-9) ),并且当翻转磁场方向时,反转磁振子手性〜(4,5)。电信号在两个共振点上的温度依赖性表明,自旋电流同时包含相干和不相干的磁振子贡献,这通过测量自旋塞贝克效应得到进一步证实,并且由现象学理论很好地描述了。这些发现揭示了反铁磁体中的磁振子激励的独特特征,以及它们在高频状态下自旋电荷转换中的独特作用。

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  • 来源
    《Nature》 |2020年第7793期|70-74|共5页
  • 作者

  • 作者单位

    Department of Physics and Astronomy University of California;

    Physics Department University of California|Institute for Terahertz Science and Technology University of California;

    Department of Physics and Astronomy University of California|Department of Electrical and Computer Engineering University of California;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 05:22:21

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