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Enhanced Spectral Response of ZnO-Nanorod-Array-Based Ultraviolet Photodetectors by Alloying Non-Isovalent Cu–O with CuAlO(2) P-Type Layer

CuAlO(2) was synthesized by a hydrothermal method, in which the Cu–O dimers were incorporated by simply altering the ratio of the reactants and the temperature. The incorporation process increases the grain size in CuAlO(2), and modulates the work function and binding energies for CuAlO(2) due to th...

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Autores principales: Long, Yuchen, Zhang, Ziling, Yang, Xiutao, Liu, Yang, Luo, Guangcan, Zhang, Jingquan, Li, Wei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10180443/
https://www.ncbi.nlm.nih.gov/pubmed/37177017
http://dx.doi.org/10.3390/nano13091472
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author Long, Yuchen
Zhang, Ziling
Yang, Xiutao
Liu, Yang
Luo, Guangcan
Zhang, Jingquan
Li, Wei
author_facet Long, Yuchen
Zhang, Ziling
Yang, Xiutao
Liu, Yang
Luo, Guangcan
Zhang, Jingquan
Li, Wei
author_sort Long, Yuchen
collection PubMed
description CuAlO(2) was synthesized by a hydrothermal method, in which the Cu–O dimers were incorporated by simply altering the ratio of the reactants and the temperature. The incorporation process increases the grain size in CuAlO(2), and modulates the work function and binding energies for CuAlO(2) due to the partial substitution of Cu(+) 3d(10) with Cu(2+) 3d(9) orbitals in the valence band maximum by alloying non-isovalent Cu–O with a CuAlO(2) host. Based on the ZnO nanorod arrays (NRs) ultraviolet photodetector, CuAlO(2)/Cu–O fabricated by the low-cost drop-coating method was used as the p-type hole transport layer. The incorporation of the Cu–O clusters into CuAlO(2) lattice to enhance the conductivity of CuAlO(2) is an effective way for improving ZnO NRs/CuAlO(2) device performance. The photodetectors exhibit significant diode behavior, with a rectification ratio approaching 30 at ±1 V, and a dark saturation current density 0.81 mA cm(−2). The responsivity of the ZnO-NRs-based UV photodetector increases from 13.2 to 91.3 mA/W at 0 V bias, with an increase in the detectivity from 2.35 × 10(10) to 1.71 × 10(11) Jones. Furthermore, the ZnO NRs/[CuAlO(2)/Cu–O] photodetector exhibits a maximum responsivity of 5002 mA/W at 1.5 V bias under 375 nm UV illumination.
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spelling pubmed-101804432023-05-13 Enhanced Spectral Response of ZnO-Nanorod-Array-Based Ultraviolet Photodetectors by Alloying Non-Isovalent Cu–O with CuAlO(2) P-Type Layer Long, Yuchen Zhang, Ziling Yang, Xiutao Liu, Yang Luo, Guangcan Zhang, Jingquan Li, Wei Nanomaterials (Basel) Article CuAlO(2) was synthesized by a hydrothermal method, in which the Cu–O dimers were incorporated by simply altering the ratio of the reactants and the temperature. The incorporation process increases the grain size in CuAlO(2), and modulates the work function and binding energies for CuAlO(2) due to the partial substitution of Cu(+) 3d(10) with Cu(2+) 3d(9) orbitals in the valence band maximum by alloying non-isovalent Cu–O with a CuAlO(2) host. Based on the ZnO nanorod arrays (NRs) ultraviolet photodetector, CuAlO(2)/Cu–O fabricated by the low-cost drop-coating method was used as the p-type hole transport layer. The incorporation of the Cu–O clusters into CuAlO(2) lattice to enhance the conductivity of CuAlO(2) is an effective way for improving ZnO NRs/CuAlO(2) device performance. The photodetectors exhibit significant diode behavior, with a rectification ratio approaching 30 at ±1 V, and a dark saturation current density 0.81 mA cm(−2). The responsivity of the ZnO-NRs-based UV photodetector increases from 13.2 to 91.3 mA/W at 0 V bias, with an increase in the detectivity from 2.35 × 10(10) to 1.71 × 10(11) Jones. Furthermore, the ZnO NRs/[CuAlO(2)/Cu–O] photodetector exhibits a maximum responsivity of 5002 mA/W at 1.5 V bias under 375 nm UV illumination. MDPI 2023-04-26 /pmc/articles/PMC10180443/ /pubmed/37177017 http://dx.doi.org/10.3390/nano13091472 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Long, Yuchen
Zhang, Ziling
Yang, Xiutao
Liu, Yang
Luo, Guangcan
Zhang, Jingquan
Li, Wei
Enhanced Spectral Response of ZnO-Nanorod-Array-Based Ultraviolet Photodetectors by Alloying Non-Isovalent Cu–O with CuAlO(2) P-Type Layer
title Enhanced Spectral Response of ZnO-Nanorod-Array-Based Ultraviolet Photodetectors by Alloying Non-Isovalent Cu–O with CuAlO(2) P-Type Layer
title_full Enhanced Spectral Response of ZnO-Nanorod-Array-Based Ultraviolet Photodetectors by Alloying Non-Isovalent Cu–O with CuAlO(2) P-Type Layer
title_fullStr Enhanced Spectral Response of ZnO-Nanorod-Array-Based Ultraviolet Photodetectors by Alloying Non-Isovalent Cu–O with CuAlO(2) P-Type Layer
title_full_unstemmed Enhanced Spectral Response of ZnO-Nanorod-Array-Based Ultraviolet Photodetectors by Alloying Non-Isovalent Cu–O with CuAlO(2) P-Type Layer
title_short Enhanced Spectral Response of ZnO-Nanorod-Array-Based Ultraviolet Photodetectors by Alloying Non-Isovalent Cu–O with CuAlO(2) P-Type Layer
title_sort enhanced spectral response of zno-nanorod-array-based ultraviolet photodetectors by alloying non-isovalent cu–o with cualo(2) p-type layer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10180443/
https://www.ncbi.nlm.nih.gov/pubmed/37177017
http://dx.doi.org/10.3390/nano13091472
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