论文标题
2D电子气体中的新一类Landau水平和大厅阶段受到不均匀磁场的影响:一种分析溶液
New Class of Landau Levels and Hall Phases in a 2D Electron Gas Subject to an Inhomogeneous Magnetic Field: An Analytic Solution
论文作者
论文摘要
分析封闭形式的解决方案是针对受静态,不均匀($ 1/r $ $ $ $ $ $ $ $ $ $ $ $ $ $ $ $ $ $ $ $ $ $ $ $的磁场)(包括Zeeman相互作用)的分析状态的。该解决方案可访问热力学极限中二维,非相互作用的电子气体的多体性能。可以鉴定出径向扭曲的Landau水平以及接近磁杂质的磁场的密度和电流振荡。这些径向局部的振荡在很大程度上取决于自旋与磁场的耦合,这会导致非平凡的自旋电流。此外,Zeeman互动引入了$ e_f = 0^+$的最低扁平频段,假设旋转$ g_s $ - 二个。令人惊讶的是,在这种情况下,可以在热力学极限下分析电荷和当前密度。数值计算表明,与费米能量无关电子气体的总磁反应(类似于Landau水平)。但是,某些无限退化的能级的贡献可能会变成顺磁性。此外,霍尔电导率的数值计算揭示了电子气体的渐近性能,这是由矢量电位而不是磁场的各向异性驱动的,即与自旋独立。最终,扭曲的Landau水平产生了不同的霍尔电导率阶段,其特征是在特定的费米能量处尖锐的符号翻转。总体而言,我们的工作将“杂质”与Landau级物理学融合在一起,该物理不仅在本地提供了新颖的物理见解,而且还提供了渐近极限。这为许多未来的理论和实验研究铺平了道路。
An analytic closed form solution is derived for the bound states of electrons subject to a static, inhomogeneous ($1/r$-decaying) magnetic field, including the Zeeman interaction. The solution provides access to many-body properties of a two-dimensional, non-interacting, electron gas in the thermodynamic limit. Radially distorted Landau levels can be identified as well as magnetic field induced density and current oscillations close to the magnetic impurity. These radially localised oscillations depend strongly on the coupling of the spin to the magnetic field, which give rise to non-trivial spin currents. Moreover, the Zeeman interaction introduces a lowest flat band for $E_F=0^+$ assuming a spin $g_s$-factor of two. Surprisingly, in this case the charge and current densities can be computed analytically in the thermodynamic limit. Numerical calculations show that the total magnetic response of the electron gas remains diamagnetic (similar to Landau levels) independent of the Fermi energy. However, the contribution of certain, infinitely degenerate energy levels may become paramagnetic. Furthermore, numerical computations of the Hall conductivity reveal asymptotic properties of the electron gas, which are driven by the anisotropy of the vector potential instead of the magnetic field, i.e. become independent of spin. Eventually, the distorted Landau levels give rise to different Hall conductivity phases, which are characterized by sharp sign flips at specific Fermi energies. Overall, our work merges "impurity" with Landau-level physics, which provides novel physical insights, not only locally, but also in the asymptotic limit. This paves the way for a large number of future theoretical as well as experimental investigations.