论文标题
基于ZnO的电子系统中自旋轨道耦合和库仑相互作用的相互作用
Interplay of spin-orbit coupling and Coulomb interaction in ZnO-based electron system
论文作者
论文摘要
自旋轨道耦合(SOC)对于固体及其技术应用中各种基本旋转依赖性现象的关键。在半导体中,到目前为止,这些现象已经在相对较弱的电子电子相互作用方向上进行了研究,而单一电子图片所处的位置。但是,SOC可以与库仑相互作用深刻竞争,这可能导致非常规电子相的出现。由于SOC取决于晶体中的电场,包括巡回电子的贡献,因此电子电子相互作用可以改变这种耦合。在这里,我们证明了在简单的频带结构MGZNO/ZnO半导体中,高弹性二维电子系统中SOC效应的出现。该电子系统还具有强大的电子电子相互作用效果。通过改变载体密度与MG含量,我们调整SOC强度并实现其与电子 - 电子相互作用的相互作用。这些系统铺平了一种方法,可以在强电子相关性方向上出现新兴的旋转现象,并以电子旋转与密度旋转的新型准颗粒的形成。
Spin-orbit coupling (SOC) is pivotal for various fundamental spin-dependent phenomena in solids and their technological applications. In semiconductors, these phenomena have been so far studied in relatively weak electron-electron interaction regimes, where the single electron picture holds. However, SOC can profoundly compete against Coulomb interaction, which could lead to the emergence of unconventional electronic phases. Since SOC depends on the electric field in the crystal including contributions of itinerant electrons, electron-electron interactions can modify this coupling. Here we demonstrate the emergence of SOC effect in a high-mobility two-dimensional electron system in a simple band structure MgZnO/ZnO semiconductor. This electron system features also strong electron-electron interaction effects. By changing the carrier density with Mg-content, we tune the SOC strength and achieve its interplay with electron-electron interaction. These systems pave a way to emergent spintronic phenomena in strong electron correlation regime and to the formation of novel quasiparticles with the electron spin strongly coupled to the density.