低功率工作氮化铝纳米线膜紫外探测器

IF 0.8 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
K. Teker
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引用次数: 0

摘要

本文介绍了一种低成本、低功耗、高灵敏度氮化铝纳米线薄膜紫外探测器的制造和测试。通过周期性暴露于254 nm紫外光下,研究了在1 V至20 V的不同施加偏置下光电流上升和衰减的时间依赖动力学。该器件在1V的低偏置电压下显示稳定且可重复的光电流循环,表明其灵敏度和低功耗工作能力。此外,光电流随着偏置电压的增加而增加,使得20v时的光电流大约是1v时的17倍。尽管器件长度相对较长,但器件显示出快速响应,上升时间为270 ms。此外,光电探测器在20 V和1 V下的响应度分别为3.78 mA/W和0.201 mA/W。该研究证明了氮化铝纳米线在下一代低功耗纳米级光电器件中的应用潜力,包括先进通信、火焰检测、空气净化、臭氧传感、泄漏检测和其他空间监测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low-Power Operating Aluminum Nitride Nanowire-Film Ultraviolet Photodetector
This work presents the fabrication and testing of a cost-effective, low power consuming, high sensitivity aluminum nitride nanowire-film-based ultraviolet photodetector. Time-dependent dynamics of photocurrent rise and decay have been investigated with varying applied bias ranging from 1 V to 20 V by periodical exposures to 254 nm ultraviolet light. The device shows stable and repeatable photocurrent cycles at low bias voltage of 1V indicating the sensitivity and low power operating capability. Furthermore, the photocurrent increases as the bias voltage increases such that the photocurrent at 20 V is approximately seventeen times larger than that of at 1 V. Despite the relatively long device length, the device reveals a quick response with a rise time of 270 ms. Moreover, the responsivity of the photodetector has been determined as 3.78 mA/W and 0.201 mA/W at 20 V and 1 V, respectively. This study demonstrates the potential of aluminum nitride nanowires for applications in next generation, low power consumption nanoscale optoelectronic devices in advanced communication, flame detection, air purification, ozone sensing, leak detection and other space monitoring.
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来源期刊
Journal of Nano Research
Journal of Nano Research 工程技术-材料科学:综合
CiteScore
2.40
自引率
5.90%
发文量
55
审稿时长
4 months
期刊介绍: "Journal of Nano Research" (JNanoR) is a multidisciplinary journal, which publishes high quality scientific and engineering papers on all aspects of research in the area of nanoscience and nanotechnologies and wide practical application of achieved results. "Journal of Nano Research" is one of the largest periodicals in the field of nanoscience and nanotechnologies. All papers are peer-reviewed and edited. Authors retain the right to publish an extended and significantly updated version in another periodical.
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