Ben-Zvi Regev, Bar-Elli Omri, Oron Dan, Joselevich Ernesto
Departments of Materials and Interfaces, Weizmann Institute of Science, Rehovot, Israel.
Departments of Physics of Complex Systems, Weizmann Institute of Science, Rehovot, Israel.
Nat Commun. 2021 Jun 2;12(1):3286. doi: 10.1038/s41467-021-23488-z.
Polar materials display a series of interesting and widely exploited properties owing to the inherent coupling between their fixed electric dipole and any action that involves a change in their charge distribution. Among these properties are piezoelectricity, ferroelectricity, pyroelectricity, and the bulk photovoltaic effect. Here we report the observation of a related property in this series, where an external electric field applied parallel or anti-parallel to the polar axis of a crystal leads to an increase or decrease in its second-order nonlinear optical response, respectively. This property of electric-field-modulated second-harmonic generation (EFM-SHG) is observed here in nanowires of the polar crystal ZnO, and is exploited as an analytical tool to directly determine by optical means the absolute direction of their polarity, which in turn provides important information about their epitaxy and growth mechanism. EFM-SHG may be observed in any type of polar nanostructures and used to map the absolute polarity of materials at the nanoscale.
极性材料由于其固定电偶极与任何涉及电荷分布变化的作用之间存在固有耦合,因而展现出一系列有趣且得到广泛应用的特性。这些特性包括压电性、铁电性、热释电性和体光伏效应。在此,我们报告了该系列中一种相关特性的观测结果,即平行或反平行于晶体极轴施加的外部电场分别导致其二阶非线性光学响应增强或减弱。这种电场调制二次谐波产生(EFM-SHG)特性在极性晶体ZnO纳米线中得到观测,并被用作一种分析工具,通过光学手段直接确定其极性的绝对方向,这反过来又提供了有关其外延和生长机制的重要信息。EFM-SHG可在任何类型的极性纳米结构中观测到,并用于在纳米尺度上绘制材料的绝对极性图。