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单个ZnO纳米棒上的空间分辨光响应:关联形态、缺陷与电导率

Spatially resolved photoresponse on individual ZnO nanorods: correlating morphology, defects and conductivity.

作者信息

Bandopadhyay K, Mitra J

机构信息

School of Physics, Indian Institute of Science Education and Research, Thiruvananthapuram, 695016, India.

出版信息

Sci Rep. 2016 Jun 23;6:28468. doi: 10.1038/srep28468.

Abstract

Electrically active native point defects have a significant impact on the optical and electrical properties of ZnO nanostructures. Control of defect distribution and a detailed understanding of their physical properties are central to designing ZnO in novel functional forms and architecture, which ultimately decides device performance. Defect control is primarily achieved by either engineering nanostructure morphology by tailoring growth techniques or doping. Here, we report conducting atomic force microscopy studies of spatially resolved photoresponse properties on ZnO nanorod surfaces. The photoresponse for super-band gap, ultraviolet excitations show a direct correlation between surface morphology and photoactivity localization. Additionally, the system exhibits significant photoresponse with sub-bandgap, green illumination; the signature energy associated with the deep level oxygen vacancy states. While the local current-voltage characteristics provide evidence of multiple transport processes and quantifies the photoresponse, the local time-resolved photoresponse data evidences large variations in response times (90 ms-50 s), across the surface of a nanorod. The spatially varied photoconductance and the range in temporal response display a complex interplay of morphology, defects and connectivity that brings about the true colour of these ZnO nanostructures.

摘要

具有电活性的本征点缺陷对ZnO纳米结构的光学和电学性质有重大影响。控制缺陷分布并详细了解其物理性质是设计新型功能形式和结构的ZnO的核心,这最终决定了器件性能。缺陷控制主要通过调整生长技术或掺杂来设计纳米结构形态来实现。在此,我们报告了对ZnO纳米棒表面空间分辨光响应特性进行的导电原子力显微镜研究。超带隙紫外激发的光响应表明表面形态与光活性定位之间存在直接关联。此外,该系统在亚带隙绿色光照下表现出显著的光响应;这与深能级氧空位态相关的特征能量有关。虽然局部电流-电压特性提供了多种传输过程的证据并量化了光响应,但局部时间分辨光响应数据表明,在纳米棒表面,响应时间(90毫秒至秒)存在很大差异。空间变化的光电导和时间响应范围显示出形态、缺陷和连通性之间的复杂相互作用,这造就了这些ZnO纳米结构的真实特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1112/4917851/a51d0fc60d84/srep28468-f1.jpg

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