卤化物
压电
挠曲电
光伏系统
能量收集
材料科学
半导体
光电子学
振荡(细胞信号)
光电效应
带隙
工程物理
纳米技术
化学
无机化学
电介质
能量(信号处理)
物理
电气工程
工程类
复合材料
量子力学
生物化学
作者
Longlong Shu,Shanming Ke,Linfeng Fei,Wenbin Huang,Zhiguo Wang,Jinhui Gong,Xiaoning Jiang,Li Wang,Fei Li,Shuijin Lei,Zhenggang Rao,Yangbo Zhou,Ren‐Kui Zheng,Xi Yao,Yu Wang,Massimiliano Stengel,Gustau Catalán
出处
期刊:Nature Materials
[Springer Nature]
日期:2020-04-20
卷期号:19 (6): 605-609
被引量:155
标识
DOI:10.1038/s41563-020-0659-y
摘要
Harvesting environmental energy to generate electricity is a key scientific and technological endeavour of our time. Photovoltaic conversion and electromechanical transduction are two common energy-harvesting mechanisms based on, respectively, semiconducting junctions and piezoelectric insulators. However, the different material families on which these transduction phenomena are based complicate their integration into single devices. Here we demonstrate that halide perovskites, a family of highly efficient photovoltaic materials1–3, display a photoflexoelectric effect whereby, under a combination of illumination and oscillation driven by a piezoelectric actuator, they generate orders of magnitude higher flexoelectricity than in the dark. We also show that photoflexoelectricity is not exclusive to halides but a general property of semiconductors that potentially enables simultaneous electromechanical and photovoltaic transduction and harvesting in unison from multiple energy inputs. Flexoelectricity is the ability of materials to generate electricity upon bending. Here it is demonstrated that adding light to mechanical oscillation enhances effective flexoelectric coefficients by orders of magnitude, with the halide perovskites showing the largest coefficients.
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