Sinitsyn N A, Hill J E, Min Hongki, Sinova Jairo, MacDonald A H
Department of Physics, University of Texas at Austin, Austin, Texas 78712-1081, USA.
Phys Rev Lett. 2006 Sep 8;97(10):106804. doi: 10.1103/PhysRevLett.97.106804. Epub 2006 Sep 5.
Graphene has an unusual low-energy band structure with four chiral bands and half-quantized and quantized Hall effects that have recently attracted theoretical and experimental attention. We study the Fermi energy and disorder dependence of its spin Hall conductivity sigma(xy)(SH). In the metallic regime we find that vertex corrections enhance the intrinsic spin Hall conductivity and that skew scattering can lead to sigma(xy)(SH) values that exceed the quantized ones expected when the chemical potential is inside the spin-orbit induced energy gap. We predict that large spin Hall conductivities will be observable in graphene even when the spin-orbit gap does not survive disorder.
石墨烯具有独特的低能能带结构,包含四个手性能带以及半量子化和量子化的霍尔效应,这些最近引起了理论和实验方面的关注。我们研究了其自旋霍尔电导率σ(xy)(SH)的费米能量和无序依赖性。在金属区域,我们发现顶点修正增强了本征自旋霍尔电导率,并且斜散射可导致σ(xy)(SH)值超过当化学势处于自旋轨道诱导能隙内时预期的量子化值。我们预测,即使自旋轨道能隙在无序情况下不存在,在石墨烯中仍可观测到较大的自旋霍尔电导率。