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首页> 外文期刊>Physical Review. B, Condensed Matter >Electron-nuclear spin dynamics of Ga~(2+) paramagnetic centers probed by spin-dependent recombination: A master equation approach
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Electron-nuclear spin dynamics of Ga~(2+) paramagnetic centers probed by spin-dependent recombination: A master equation approach

机译:通过旋转依赖性重组探测Ga〜(2+)顺磁中心的电子核自旋动力学:主方程方法

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摘要

Similar to nitrogen-vacancy centers in diamond and impurity atoms in silicon, interstitial gallium deep paramagnetic centers in GaAsN have been proven to have useful characteristics for the development of spintronic devices.Among other interesting properties, under circularly polarized light, gallium centers act as spin filters that dynamically polarize free and bound electrons reaching record spin polarizations (close to 100%). Furthermore, the recent observation of the amplification of the spin filtering effect under a Faraday configuration magnetic field has suggested that the hyperfine interaction that couples bound electrons and nuclei permits the optical manipulation of the nuclear spin polarization. Even though the mechanisms behind the nuclear spin polarization in gallium centers are fairly well understood, the origin of nuclear spin relaxation and the formation of an Overhauser-like magnetic field remain elusive. In this work we develop a model based on the master equation approach to describe the evolution of electronic and nuclear spin polarizations of gallium centers interacting with free electrons and holes. Our results are in good agreement with existing experimental observations. In particular, we are able to reproduce the amplification of the spin filtering effect under a circularly polarized excitation in a Faraday configuration magnetic field. In regard to the nuclear spin relaxation, the roles of nuclear dipolar and quadrupolar interactions are discussed. Our findings show that, besides the hyperfine interaction, the spin relaxation mechanisms are key to understand the amplification of the spin filtering effect and the appearance of the Overhauser-like magnetic field. To gain a deeper insight in the interplay of the hyperfine interaction and the relaxation mechanisms, we have also performed calculations in the pulsed excitation regime. Our model’s results allow us to propose an experimental protocol based on time-resolved spectroscopy. It consists of a pump-probe photoluminescence scheme with the detection and the tracing of the electron-nucleus flip-flops through photoluminescence measurements.
机译:与硅金刚石和杂质原子中的氮空缺中心类似,GaAsn中的间质镓深神经磁心中心已被证明具有用于开发的旋转式装置的有用特性。在圆偏振光下,镓中心在圆形偏振光下的其他有趣性质。过滤器动态偏振的自由和结合电子达到记录自旋极化(接近100%)。此外,最近对法拉第配置磁场下的旋转过滤效果的放大的观察表明,耦合结合电子和核的高血换相互作用允许核自旋极化的光学操纵。尽管镓中心的核自旋极化背后的机制非常清楚,但核自旋弛豫的起源和近豪光的磁场的形成仍然难以捉摸。在这项工作中,我们开发了一种基于主方程方法的模型来描述与游离电子和孔的镓中心的电子和核自旋偏振的演变。我们的结果与现有的实验观察结果良好。特别地,我们能够在法拉第配置磁场中的圆极化激励下再现自旋滤波效果的放大。关于核自旋松弛,讨论了核偶极和四极相互作用的作用。我们的研究结果表明,除了高浓度的相互作用之外,旋转弛豫机制是了解旋转过滤效果的放大和过度型磁场的外观的关键。为了在高血换相互作用和松弛机制的相互作用中获得更深入的洞察力,我们还在脉冲激励制度中进行了计算。我们的模型的结果允许我们提出基于时间分辨光谱的实验方案。它由泵探针光致发光方案组成,通过光致发光测量来检测和电子核触发器的跟踪。

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  • 来源
    《Physical Review. B, Condensed Matter》 |2017年第20期|195204.1-195204.14|共14页
  • 作者单位

    Departamento de Fisica Universidad Autonoma Metropolitana Iztapalapa Av. San Rafael Atlixco 186 Col. Vicentina 09340 Cuidad de Mexico Mexico;

    Departamento de Fisica Universidad Autonoma Metropolitana Iztapalapa Av. San Rafael Atlixco 186 Col. Vicentina 09340 Cuidad de Mexico Mexico;

    Universite de Toulouse INSA-CNRS-UPS LPCNO 135 avenue de Rangueil 31077 Toulouse France;

    Universite de Toulouse INSA-CNRS-UPS LPCNO 135 avenue de Rangueil 31077 Toulouse France;

    Ioffe Physical-Technical Institute 194021 St. Petersburg Russia;

    Ioffe Physical-Technical Institute 194021 St. Petersburg Russia;

    Ioffe Physical-Technical Institute 194021 St. Petersburg Russia;

    Universite de Toulouse INSA-CNRS-UPS LPCNO 135 avenue de Rangueil 31077 Toulouse France;

    Universite de Toulouse INSA-CNRS-UPS LPCNO 135 avenue de Rangueil 31077 Toulouse France;

    Universite de Toulouse INSA-CNRS-UPS LPCNO 135 avenue de Rangueil 31077 Toulouse France;

    Área de Fisica Teorica y Materia Condensada Universidad Autonoma Metropolitana Azcapotzalco Av. San Pablo 180 Col. Reynosa-Tamaulipas 02200 Cuidad de Mexico Mexico;

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