Electrically switchable Berry curvature dipole in the monolayer topological insulator WTe2

Berry连接和曲率 物理 凝聚态物理 拓扑绝缘体 偶极子 波函数 拓扑(电路) 电子 曲率 量子力学 几何相位 几何学 数学 组合数学
作者
Su-Yang Xu,Qiong Ma,Huitao Shen,Valla Fatemi,Sanfeng Wu,Tay‐Rong Chang,Guoqing Chang,Andrés M. Mier Valdivia,Ching-Kit Chan,Quinn Gibson,Jiadong Zhou,Zheng Liu,Kenji Watanabe,Takashi Taniguchi,Hsin Lin,R. J. Cava,Liang Fu,Nuh Gedik,Pablo Jarillo‐Herrero
出处
期刊:Nature Physics [Nature Portfolio]
卷期号:14 (9): 900-906 被引量:340
标识
DOI:10.1038/s41567-018-0189-6
摘要

Recent experimental evidence for the quantum spin Hall (QSH) state in monolayer WTe$_2$ has bridged two of the most active fields of condensed matter physics, 2D materials and topological physics. This 2D topological crystal also displays unconventional spin-torque and gate-tunable superconductivity. While the realization of QSH has demonstrated the nontrivial topology of the electron wavefunctions of monolayer WTe$_2$, the geometrical properties of the wavefunction, such as the Berry curvature, remain unstudied. On the other hand, it has been increasingly recognized that the Berry curvature plays an important role in multiple areas of condensed matter physics including nonreciprocal electron transport, enantioselective optical responses, chiral polaritons and even unconventional superconductivity. Here we utilize mid-infrared optoelectronic microscopy to investigate the Berry curvature in monolayer WTe$_2$. By optically exciting electrons across the inverted QSH gap, we observe an in-plane circular photogalvanic current even under normal incidence. The application of an out-of-plane displacement field further systematically controls the direction and magnitude of the photocurrent. Our observed photocurrent reveals a novel Berry curvature dipole that arises from the nontrivial wavefunctions near the inverted gap edge. These previously unrealized Berry curvature dipole and strong electric field effect are uniquely enabled by the inverted band structure and tilted crystal lattice of monolayer WTe$_2$. Such an electrically switchable Berry curvature dipole opens the door to the observation of a wide range of quantum geometrical phenomena, such as quantum nonlinear Hall, orbital-Edelstein and chiral polaritonic effects.
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