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紫外光谱区域中基于少层石墨烯/氧化锌纳米线异质结的光电探测器的设计与TCAD分析

Design and TCAD analysis of few-layer graphene/ZnO nanowires heterojunction-based photodetector in UV spectral region.

作者信息

Bansal Shonak, Kumar Sandeep, Jain Arpit, Rohilla Vinita, Prakash Krishna, Gupta Anupma, Ali Tanweer, Alenezi Abdulmajeed M, Islam Mohamed Shabiul, Soliman Mohamed S, Islam Mohammad Tariqul

机构信息

Department of Electronics and Communication Engineering, Chandigarh University, Gharuan, Punjab, India.

School of Computer Science and Artificial Intelligence, SR University, Warangal, India.

出版信息

Sci Rep. 2025 Mar 5;15(1):7762. doi: 10.1038/s41598-025-92596-3.

Abstract

Graphene and zinc oxide (ZnO) nanowires (NWs)-based photodetectors demonstrate excellent photodetection performance in the ultraviolet (UV) spectrum regime. This paper presents the design and analysis of a heterostructure model of p-few-layer graphene (p-FLG)/n-ZnO NWs-based UV photodetector. The design utilizes the unique properties of few-layer graphene to enhance light absorption and improve photodetector performance. The analysis under both self-biasing and conductive modes of operation reveals that the integrated electric field and the photovoltaic effect at the p⁺-FLG/n⁻-ZnO NWs hetero-interface create a rectifying behavior. The photodetector achieves an external photocurrent responsivity, external quantum efficiency, detectivity, and noise equivalent power of 0.12 A/W, 44.1%, 1.9 × 10 Jones, and 5.6 × 10 W, respectively, under UV illumination at 350 nm, 0 V bias, and 300 K. Additionally, the photodetector exhibits ultrafast photoswitching rise and fall times of 0.26 ns and a 3-dB cut-off frequency of 1.31 GHz. The comparative analysis with existing photodetectors demonstrates that the proposed model surpasses many in sensitivity, speed, and efficiency. The enhancement of charge collection with the applied reverse-biased voltage results in a response time of 0.16 ns, a peak photocurrent responsivity of 0.2 A/W, a maximum external quantum efficiency of 61%, a peak detectivity of 2.4 × 10 Jones, and minimum noise equivalent power of 4.4 × 10 W at - 0.5 V. The findings inspire the development of next-generation self-driving, highly efficient, broadband photodetectors, and other economically viable and multifunctional optoelectronic devices.

摘要

基于石墨烯和氧化锌(ZnO)纳米线(NWs)的光电探测器在紫外(UV)光谱范围内展现出优异的光电探测性能。本文介绍了一种基于p型少层石墨烯(p-FLG)/n型ZnO纳米线的紫外光电探测器异质结构模型的设计与分析。该设计利用了少层石墨烯的独特特性来增强光吸收并改善光电探测器性能。在自偏置和传导操作模式下的分析表明,p⁺-FLG/n⁻-ZnO纳米线异质界面处的集成电场和光伏效应产生了整流行为。在350 nm紫外光照、0 V偏置和300 K条件下,该光电探测器的外部光电流响应度、外部量子效率、探测率和噪声等效功率分别达到0.12 A/W、44.1%、1.9×10 Jones和5.6×10 W。此外,该光电探测器具有0.26 ns的超快光开关上升和下降时间以及1.31 GHz的3 dB截止频率。与现有光电探测器的对比分析表明,所提出的模型在灵敏度、速度和效率方面优于许多同类产品。施加反向偏置电压时电荷收集的增强导致响应时间为0.16 ns、峰值光电流响应度为0.2 A/W、最大外部量子效率为61%、峰值探测率为2.4×10 Jones以及在-0.5 V时的最小噪声等效功率为4.4×10 W。这些发现为下一代自动驾驶、高效、宽带光电探测器以及其他经济可行的多功能光电器件的发展提供了启发。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/407b/11882988/ab1dfbfec96f/41598_2025_92596_Fig1_HTML.jpg

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