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拓扑绝缘体中轨道选择的自旋织构及其操控。

Orbital-selective spin texture and its manipulation in a topological insulator.

机构信息

1] Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China [2].

Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.

出版信息

Nat Commun. 2014 Feb 28;5:3382. doi: 10.1038/ncomms4382.

Abstract

Topological insulators represent a new quantum state of matter that are insulating in the bulk but metallic on the edge or surface. In the Dirac surface state, it is well-established that the electron spin is locked with the crystal momentum. Here we report a new phenomenon of the spin texture locking with the orbital texture in a topological insulator Bi₂Se₃. We observe light-polarization-dependent spin texture of both the upper and lower Dirac cones that constitutes strong evidence of the orbital-dependent spin texture in Bi₂Se₃. The different spin texture detected in variable polarization geometry is the manifestation of the spin-orbital texture in the initial state combined with the photoemission matrix element effects. Our observations provide a new orbital degree of freedom and a new way of light manipulation in controlling the spin structure of the topological insulators that are important for their future applications in spin-related technologies.

摘要

拓扑绝缘体是一种全新的物质态,在体内是绝缘的,但在边缘或表面却是金属的。在狄拉克表面态中,电子自旋与晶体动量锁定已经得到了很好的证实。在这里,我们报告了在拓扑绝缘体 Bi₂Se₃中出现的一种新的现象,即轨道织构与自旋织构的锁定。我们观察到了上、下狄拉克锥的光偏振依赖性自旋织构,这为 Bi₂Se₃中轨道依赖的自旋织构提供了强有力的证据。在不同的偏振几何中检测到的不同的自旋织构是初始态中的自旋-轨道织构与光发射矩阵元效应相结合的表现。我们的观察结果为控制拓扑绝缘体的自旋结构提供了一个新的轨道自由度和一种新的光操纵方式,这对于它们在自旋相关技术中的未来应用非常重要。

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