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Electrical control of spin relaxation anisotropy during drift transport in a two-dimensional electron gas

机译:二维电子气体漂移运输过程中旋转弛豫各向异性的电气控制

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Spin relaxation was studied in a two-dimensional electron gas confined in a wide GaAs quantum well. Recently, the control of the spin relaxation anisotropy by diffusive motion was first shown in D. Iizasa et al.. arXiv:2006.08253. Here, we demonstrate electrical control by drift transport in a system with two subbands occupied. The combined effect of in-plane and gate voltages was investigated using time-resolved Kerr rotation. The measured relaxation time presents strong anisotropy with respect to the transport direction. For an in-plane accelerating electric field along [110], the lifetime was strongly suppressed irrespective of the applied gate voltage. Remarkably, for transport along [110], the data shows spin lifetime that was gate dependent and longer than in the [110] direction regardless of the in-plane voltage. In agreement, independent results of anisotropic spin precession frequencies are also presented. Nevertheless, the long spin lifetime, strong anisotropy and drift response seen in the data are beyond the existing models for spin drift and diffusion.
机译:在宽的GaAs量子阱中围绕的二维电子气体研究了旋转松弛。最近,首先在D. Iizasa等,首先显示通过扩散运动对旋转弛豫各向异性的控制。arxiv:2006.08253。这里,我们通过占用两个子带的系统中的漂移传输来展示电气控制。使用时间分辨的克尔旋转研究了平面内和栅极电压的组合效果。测量的弛豫时间相对于运输方向提出了强大的各向异性。对于沿着[110]的平面内加速电场,不管施加的栅极电压如何强烈地抑制寿命。值得注意的是,为了沿着[110],数据显示旋转寿命,其栅极依赖于栅极,而不是在[110]方向上,而不管面内电压如何。同意,还提出了各向异性自旋预测频率的独立结果。然而,在数据中看到的长自旋寿命,强烈的各向异性和漂移反应超出了旋转漂移和扩散的现有模型。

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  • 来源
    《Physical review.B.Condensed matter and materials physics 》 |2020年第12期| 125305.1-125305.7| 共7页
  • 作者单位

    Instituto de Fisica Universidade de Sao Paulo Sao Paulo Sao Paulo 05508-090 Brazil;

    Instituto de Fisica Universidade Federal de Uberlandia Uberlandia Minas Gerais 38400-902 Brazil;

    Department of Physics University of Michigan Ann Arbor Michigan 48109 USA;

    Department of Physics University of Michigan Ann Arbor Michigan 48109 USA;

    Instituto de Fisica Universidade de Sao Paulo Sao Paulo Sao Paulo 05508-090 Brazil;

    Instituto de Fisica Universidade de Sao Paulo Sao Paulo Sao Paulo 05508-090 Brazil;

    Instituto de Fisica Universidade de Sao Paulo Sao Paulo Sao Paulo 05508-090 Brazil;

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