Department of Physics, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Science. 2013 Oct 25;342(6157):453-7. doi: 10.1126/science.1239834.
The unique electronic properties of the surface electrons in a topological insulator are protected by time-reversal symmetry. Circularly polarized light naturally breaks time-reversal symmetry, which may lead to an exotic surface quantum Hall state. Using time- and angle-resolved photoemission spectroscopy, we show that an intense ultrashort midinfrared pulse with energy below the bulk band gap hybridizes with the surface Dirac fermions of a topological insulator to form Floquet-Bloch bands. These photon-dressed surface bands exhibit polarization-dependent band gaps at avoided crossings. Circularly polarized photons induce an additional gap at the Dirac point, which is a signature of broken time-reversal symmetry on the surface. These observations establish the Floquet-Bloch bands in solids and pave the way for optical manipulation of topological quantum states of matter.
拓扑绝缘体表面电子的独特电子特性受到时间反演对称性的保护。圆偏振光自然地打破时间反演对称性,这可能导致奇异的表面量子霍尔态。我们使用时间和角度分辨光发射谱,表明能量低于体带隙的强超短中红外脉冲与拓扑绝缘体的表面狄拉克费米子杂化,形成了弗洛凯-布洛赫能带。这些光子修饰的表面能带在避免交叉处表现出偏振相关的能隙。圆偏振光子在狄拉克点处诱导附加的能隙,这是表面时间反演对称性破缺的标志。这些观察结果确立了固体中的弗洛凯-布洛赫能带,并为光学操控物质的拓扑量子态铺平了道路。