α-Ga2O3-ZnO异质结的构建提高了自供电太阳盲探测器的性能

Wen-jing Liu, Jianrong Deng, Dan Zhang, Lijuan Huang, Zhengrui Hu, Shuren Zhou, Hong Zhang, Lijuan Ye, Yuanqiang Xiong, C. Kong, Honglin Li, Wanjun Li
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引用次数: 1

摘要

基于氧化镓的光电电化学光电探测器(pec - pd)因其天然的自供电特性和在太阳盲区的探测能力而受到广泛关注。在这项工作中,α-Ga2O3纳米棒- zno纳米异质结(α-Ga2O3- zno)被构建在FTO导电玻璃衬底上作为pec - pd的光阳极。α-Ga2O3-ZnO异质结pec - pd的性能可以通过改变ZnO纳米粒子的浓度来实现。实验结果表明,采用α-Ga2O3- zno异质结制备的器件具有自供电的太阳盲探测特性,性能优于原始α-Ga2O3制备的器件。当ZnO纳米粒子浓度达到一定值时,响应率最高可达32 mA/W,响应时间低至0.25/0.18 s。结合第一性原理计算,详细讨论了性能提高的机理。结果表明,α-Ga2O3与ZnO的接触可诱导电荷转移,并形成一个内置电场,作为驱动力将光生载流子分离成不同的部分。该工艺可以有效防止光生载流子的复合,延长e—h+的寿命,最终提高整体检测性能。该工作将为新型高性能自供电太阳盲深紫外光电探测器的开发提供有意义的指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Construction of α-Ga2O3-ZnO heterojunction for a promoted performance applied in self-powered solar blind photodetector
Gallium oxide-based photoelectrochemical photodetectors (PEC-PDs) have received extensive attention due to their natural self-powered characteristic and detection capability in solar-blind region. In this work, α-Ga2O3 nanorods-ZnO nanoparticles heterojunction (α-Ga2O3-ZnO) are constructed on FTO conductive glass substrates as photoanodes for PEC-PDs. The efficient regulation of performance for α-Ga2O3-ZnO heterojunction PEC-PDs is achieved by varying the ZnO nanoparticles concentration. Experimental results show that all devices exhibit self-powered solar blind detection characteristics and the performance of devices prepared by α-Ga2O3-ZnO heterojunction is better than that of pristine α-Ga2O3. When the concentration of ZnO nanoparticles reaches to a certain value, the responsivity shows the maximum value as high as 32 mA/W, and the response time is as low as 0.25/0.18 s. Combined with first-principles calculations, the mechanism of the improved performance is discuss in detail. The results reveal that that the contact between α-Ga2O3 and ZnO can induce charges transfer, which constitutes a built-in electric field that acts as a driving force to separate the photogenerated carriers into different sections. This process can effectively prevent the recombination of photogenerated carriers, and prolong the lifetime of e--h+, thus improve the overall detection performance finally. This work will provide meaningful guidance for the development of novel high-performance self-powered solar-blind deep-UV photodetectors.
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