论文标题

核旋转极性形成的动力学方法

Kinetic approach to the nuclear-spin polaron formation

论文作者

Fischer, Andreas, Kleinjohann, Iris, Anders, Frithjof B., Glazov, Mikhail M.

论文摘要

在核的光学冷却下,由于局部电子自旋与周围的核自旋的强烈高精细相互作用,可以在半导体纳米结构中形成强相关的核旋转极性状态。在这里,我们开发了描述核旋转极化形成的动力学方程式形式主义。我们提出了动力学方程的推导,该方程是电子核自旋系统与不同电子和核自旋温度的储层相连的,该储层产生了与系统尺寸无关的相等温度的精确热力学稳态。我们使用中央自旋模型的分析解决方案以超精细耦合形式的极限说明了我们的方法。对于均匀的超精细耦合常数,即框模型,该模型被简化为可解析的形式。根据核旋转分布函数和电子核自旋相关因子的分析,我们得出了电子与核自旋温度之间的关系,在该温度中形成了相关的核旋转极性状态。在大型核浴的极限中,该温度线与极性形成的平均场理论的临界温度一致。讨论了有限尺寸系统中极地形成的标准。我们证明,过渡温度下系统的行为不取决于超精耦合分布函数的细节,而仅取决于有效的耦合浴旋转数量。此外,动力学方程能够分析核孔子状态的时间形成,在那里我们发现核自旋翼型动力学占主导的堆积过程。

Under optical cooling of nuclei, a strongly correlated nuclear-spin polaron state can form in semiconductor nanostructures with localized charge carriers due to the strong hyperfine interaction of the localized electron spin with the surrounding nuclear spins. Here we develop a kinetic-equation formalism describing the nuclear-spin polaron formation. We present a derivation of the kinetic equations for an electron-nuclear spin system coupled to reservoirs of different electron and nuclear spin temperatures which generate the exact thermodynamic steady state for equal temperatures independent of the system size. We illustrate our approach using the analytical solution of the central spin model in the limit of an Ising form of the hyperfine coupling. For homogeneous hyperfine coupling constants, i.e., the box model, the model is reduced to an analytically solvable form. Based on the analysis of the nuclear-spin distribution function and the electron-nuclear spin correlators, we derive a relation between the electron and nuclear spin temperatures, where the correlated nuclear-spin polaron state is formed. In the limit of large nuclear baths, this temperature line coincides with the critical temperature of the mean-field theory for polaron formation. The criteria of the polaron formation in a finite-size system are discussed. We demonstrate that the system's behavior at the transition temperature does not depend on details of the hyperfine-coupling distribution function but only on the effective number of coupled bath spins. In addition, the kinetic equations enable the analysis of the temporal formation of the nuclear-polaron state, where we find the build-up process predominated by the nuclear spin-flip dynamics.

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