材料科学
压电
光电流
各向异性
光电子学
拉曼光谱
极化(电化学)
光探测
凝聚态物理
光学
复合材料
光电探测器
化学
物理
物理化学
作者
Ling Li,Wei Gao,Hongyu Chen,Kai Zhao,Peiting Wen,Yujue Yang,Xingfu Wang,Zhongming Wei,Nengjie Huo,Jingbo Li
标识
DOI:10.1002/aelm.201901441
摘要
Abstract 1D microwires with low‐symmetric crystal structures are promising platforms to realize the anisotropy and piezotronics, enabling diverse novel device functions such as polarization sensitive photodetection, strain sensing, and energy conversion. Here, the highly anisotropy with polarized Raman spectra and angle‐resolved photocurrent as well as the remarkable piezoelectric characteristics in the 1D tin dioxide (SnO 2 ) microwires is reported for the first time. The gauge factor can reach as high as 4100, implying the great strain “gating” effect on the current modulation. The cyclic stretching and releasing of the microwires has led to the significant oscillating piezoelectric current outputs of 750 pA. Moreover, the ultraviolent photoresponse is dramatically improved by one order of magnitude with fast speed of 2 ms benefitting from the excellent piezo‐phototronic effect. Both highly anisotropy and superior piezoelectricity in this work have opened up the new application scenarios of SnO 2 microwires in unique angle‐dependent and stretchable electronics and optoelectronics.
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