光探测
材料科学
形态学(生物学)
肖特基二极管
光电子学
纳米技术
肖特基势垒
光电探测器
遗传学
二极管
生物
作者
Xiaohu Chen,Binesh Puthen Veettil,Noushin Nasiri
出处
期刊:Nano Today
[Elsevier BV]
日期:2025-04-07
卷期号:63: 102754-102754
被引量:13
标识
DOI:10.1016/j.nantod.2025.102754
摘要
Emerging nanostructured materials have opened new frontiers in the design of high-performance optoelectronic devices, particularly for self-powered photodetection applications. Here, we present the novel self-powered UV photodetection capabilities of Pt/ZnO Schottky barrier devices that fabricated with two distinct ZnO morphologies: dendrite-like nanoclusters (DNCs) and nano- micro-cluster arrays (NMCAs). Both architectures demonstrate robust self-powered UV photodetection performance, albeit with significant differences in their optoelectronic behavior. The DNC-based UV photodetector (Pt/ZnO DNCs ), characterized by weak inter-nanoparticle connections and smaller structural dimensions, exhibits reduced photocurrent, higher noise levels, and non-linear photoresponse dynamics under elevated UV illumination. Conversely, the NMCA-based devices (Pt/ZnO NMCAs ), formed through capillary-driven self-assembly of DNCs using a single ethanol droplet, achieve a dramatic enhancement in performance, with a nearly thousand-fold increase in photocurrent, alongside excellent repeatability and long-term stability. Furthermore, the Pt/ZnO NMCAs exhibit a 3.5-fold improvement in response time, with a rise time of 9.6 s compared to 51.9 s for the DNC-based variant under a UV light intensity of 2.5 mW·cm - ² in self-powered mode. These findings underscore the significant potential of NMCA-structured ZnO nanomaterials as high-performance candidates for photoconductive devices, advancing the development of self-powered optoelectronic technologies. • Two distinct ZnO architectures (DNCs & NMCAs) were explored for self-powered UV photodetection. • NMCA-based Pt/ZnO devices demonstrated ∼1000× higher photocurrent than DNC, with excellent stability. • Pt/ZnO NMCAs achieved a 3.5× faster response time (9.6 s vs. 51.9 s for DNC devices) under 2.5 mW/cm² UV light. • The NMCA structures were fabricated through capillary-driven self-assembly of DNCs using only a single ethanol droplet. • NMCA-structured ZnO nanomaterials are promising for advancing self-powered optoelectronictechnologies.
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