Quantum-Phase Electronics Center (QPEC) and Department of Applied Physics, The University of Tokyo, Tokyo 113-8656, Japan.
College of Engineering and Applied Sciences and National Laboratory of Solid-State Microstructures, Nanjing University, Nanjing, China.
Science. 2021 Apr 2;372(6537):68-72. doi: 10.1126/science.aaz9146.
Van der Waals interfaces can be formed by layer stacking without regard to lattice constants or symmetries of individual building blocks. We engineered the symmetry of a van der Waals interface of tungsten selenide and black phosphorus and realized in-plane electronic polarization that led to the emergence of a spontaneous photovoltaic effect. Spontaneous photocurrent was observed along the polar direction and was absent in the direction perpendicular to it. The observed spontaneous photocurrent was explained by a quantum-mechanical shift current that reflects the geometrical and topological electronic nature of this emergent interface. The present results offer a simple guideline for symmetry engineering that is applicable to a variety of van der Waals interfaces.
范德华界面可以通过层堆积形成,而无需考虑单个构建块的晶格常数或对称性。我们设计了硒化钨和黑磷范德华界面的对称性,并实现了面内电子极化,从而产生了自发光伏效应。在极轴方向观察到自发光电流,而在垂直于极轴的方向则没有。观察到的自发光电流可以用量子力学的位移电流来解释,这反映了这种新兴界面的几何和拓扑电子性质。本研究结果为适用于各种范德华界面的对称性工程提供了一个简单的指导原则。