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Aligned CuO nanowire array for a high performance visible light photodetector.


ABSTRACT: Recently, copper oxide (CuO) has drawn much attention as a promising material in visible light photodetection with its advantages in ease of nanofabrication. CuO allows a variety of nanostructures to be explored to enhance the optoelectrical performance such as photogenerated carriers scattering and bandgap engineering. However, previous researches neglect in-depth analysis of CuO's light interaction effects, restrictively using random orientation such as randomly arranged nanowires, single nanowires, and dispersed nanoparticles. Here, we demonstrate an ultra-high performance CuO visible light photodetector utilizing perfectly-aligned nanowire array structures. CuO nanowires with 300 nm-width critical dimension suppressed carrier transport in the dark state and enhanced the conversion of photons to carriers; additionally, the aligned arrangement of the nanowires with designed geometry improved the light absorption by means of the constructive interference effect. The proposed nanostructures provide advantages in terms of dark current, photocurrent, and response time, showing unprecedentedly high (state-of-the-art) optoelectronic performance, including high values of sensitivity (S = 172.21%), photo-responsivity (R = 16.03 A/W, λ = 535 nm), photo-detectivity (D* = 7.78 × 1011 Jones), rise/decay time (τrd = 0.31 s/1.21 s).

SUBMITTER: Jo MS 

PROVIDER: S-EPMC8831480 | biostudies-literature | 2022 Feb

REPOSITORIES: biostudies-literature

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Aligned CuO nanowire array for a high performance visible light photodetector.

Jo Min-Seung MS   Song Hyeon-Joo HJ   Kim Beom-Jun BJ   Shin Yoo-Kyum YK   Kim Sung-Ho SH   Tian Xu X   Kim Sang-Min SM   Seo Min-Ho MH   Yoon Jun-Bo JB  

Scientific reports 20220210 1


Recently, copper oxide (CuO) has drawn much attention as a promising material in visible light photodetection with its advantages in ease of nanofabrication. CuO allows a variety of nanostructures to be explored to enhance the optoelectrical performance such as photogenerated carriers scattering and bandgap engineering. However, previous researches neglect in-depth analysis of CuO's light interaction effects, restrictively using random orientation such as randomly arranged nanowires, single nano  ...[more]

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