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Photoelctrochemically Fabricated and Heated Cu(2)O/CuO Bilayers with Enhanced Photovoltaic Characteristics
[Image: see text] Cu(2)O/CuO bilayers were fabricated by electrodeposition of the CuO layer in a copper(II)–ammonia complex aqueous solution, followed by photoelectrochemical deposition of the Cu(2)O layer at potentials ranging from −0.3 to −1.0 V referenced to a Ag/AgCl electrode in a copper(II)–la...
Autores principales: | , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical Society
2021
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8529892/ https://www.ncbi.nlm.nih.gov/pubmed/34693180 http://dx.doi.org/10.1021/acsomega.1c05163 |
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author | Izaki, Masanobu Abe, Suzuka Nakakita, Kota Khoo, Pei Loon |
author_facet | Izaki, Masanobu Abe, Suzuka Nakakita, Kota Khoo, Pei Loon |
author_sort | Izaki, Masanobu |
collection | PubMed |
description | [Image: see text] Cu(2)O/CuO bilayers were fabricated by electrodeposition of the CuO layer in a copper(II)–ammonia complex aqueous solution, followed by photoelectrochemical deposition of the Cu(2)O layer at potentials ranging from −0.3 to −1.0 V referenced to a Ag/AgCl electrode in a copper(II)–lactate complex aqueous solution under light irradiation, and the effects of varied potentials of the photoelectrochemical Cu(2)O depositions and post-heating conditions on their structural, optical, and photovoltaic characteristics were investigated with X-ray diffraction, field emission-scanning electron microscopy, optical absorption measurements, and external quantum efficiency (EQE) measurements with and without applied bias voltage. The Cu(2)O layers with a characteristic 2.1 eV band gap energy were adhesively stacked on the thorn-like grains of the CuO layers possessing a characteristic 1.5 eV band gap energy, and dense and defect-free Cu(2)O/CuO bilayers could be fabricated at the potentials of −0.4 and −0.5 V, but the grain size of Cu(2)O decreased at −0.5 V. In addition, the metallic Cu was deposited simultaneously at potentials less than −0.7 V. The Cu(2)O/CuO bilayer fabricated at −0.4 V revealed photovoltaic features at wavelengths ranging from 350 nm to approximately 900 nm, and a maximum EQE value of 56.8% was achieved at 510 nm in wavelength with a bias voltage of −0.1 V. The maximum EQE value, however, decreased to 1.2% accompanied with the peak wavelength shift to 580 nm, and no photovoltaic feature was observed at potentials of −0.3, −0.7, and −1.0 V. The photovoltaic performance for the Cu(2)O/CuO bilayer fabricated at −0.4 V was ameliorated by heating at 423 K, and the maximum EQE values were enhanced to 87.7% at 550 nm and 89.8% at 530 nm in an ambient atmosphere and vacuum. Both the Cu(2)O and CuO layers acted as photovoltaic layers in the Cu(2)O/CuO bilayer fabricated at −0.4 V and heated at 423 K, and the electrical characteristic including the carrier mobility affected the photovoltaic performance. The photovoltaic feature, however, disappeared by heating above 523 K due to the formation of nanopores inside the CuO layer and near the CuO heterointerface to the Cu(2)O and fluorine-doped tin oxide substrate. |
format | Online Article Text |
id | pubmed-8529892 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2021 |
publisher | American Chemical Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-85298922021-10-22 Photoelctrochemically Fabricated and Heated Cu(2)O/CuO Bilayers with Enhanced Photovoltaic Characteristics Izaki, Masanobu Abe, Suzuka Nakakita, Kota Khoo, Pei Loon ACS Omega [Image: see text] Cu(2)O/CuO bilayers were fabricated by electrodeposition of the CuO layer in a copper(II)–ammonia complex aqueous solution, followed by photoelectrochemical deposition of the Cu(2)O layer at potentials ranging from −0.3 to −1.0 V referenced to a Ag/AgCl electrode in a copper(II)–lactate complex aqueous solution under light irradiation, and the effects of varied potentials of the photoelectrochemical Cu(2)O depositions and post-heating conditions on their structural, optical, and photovoltaic characteristics were investigated with X-ray diffraction, field emission-scanning electron microscopy, optical absorption measurements, and external quantum efficiency (EQE) measurements with and without applied bias voltage. The Cu(2)O layers with a characteristic 2.1 eV band gap energy were adhesively stacked on the thorn-like grains of the CuO layers possessing a characteristic 1.5 eV band gap energy, and dense and defect-free Cu(2)O/CuO bilayers could be fabricated at the potentials of −0.4 and −0.5 V, but the grain size of Cu(2)O decreased at −0.5 V. In addition, the metallic Cu was deposited simultaneously at potentials less than −0.7 V. The Cu(2)O/CuO bilayer fabricated at −0.4 V revealed photovoltaic features at wavelengths ranging from 350 nm to approximately 900 nm, and a maximum EQE value of 56.8% was achieved at 510 nm in wavelength with a bias voltage of −0.1 V. The maximum EQE value, however, decreased to 1.2% accompanied with the peak wavelength shift to 580 nm, and no photovoltaic feature was observed at potentials of −0.3, −0.7, and −1.0 V. The photovoltaic performance for the Cu(2)O/CuO bilayer fabricated at −0.4 V was ameliorated by heating at 423 K, and the maximum EQE values were enhanced to 87.7% at 550 nm and 89.8% at 530 nm in an ambient atmosphere and vacuum. Both the Cu(2)O and CuO layers acted as photovoltaic layers in the Cu(2)O/CuO bilayer fabricated at −0.4 V and heated at 423 K, and the electrical characteristic including the carrier mobility affected the photovoltaic performance. The photovoltaic feature, however, disappeared by heating above 523 K due to the formation of nanopores inside the CuO layer and near the CuO heterointerface to the Cu(2)O and fluorine-doped tin oxide substrate. American Chemical Society 2021-10-08 /pmc/articles/PMC8529892/ /pubmed/34693180 http://dx.doi.org/10.1021/acsomega.1c05163 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/). |
spellingShingle | Izaki, Masanobu Abe, Suzuka Nakakita, Kota Khoo, Pei Loon Photoelctrochemically Fabricated and Heated Cu(2)O/CuO Bilayers with Enhanced Photovoltaic Characteristics |
title | Photoelctrochemically Fabricated and Heated Cu(2)O/CuO Bilayers with Enhanced Photovoltaic Characteristics |
title_full | Photoelctrochemically Fabricated and Heated Cu(2)O/CuO Bilayers with Enhanced Photovoltaic Characteristics |
title_fullStr | Photoelctrochemically Fabricated and Heated Cu(2)O/CuO Bilayers with Enhanced Photovoltaic Characteristics |
title_full_unstemmed | Photoelctrochemically Fabricated and Heated Cu(2)O/CuO Bilayers with Enhanced Photovoltaic Characteristics |
title_short | Photoelctrochemically Fabricated and Heated Cu(2)O/CuO Bilayers with Enhanced Photovoltaic Characteristics |
title_sort | photoelctrochemically fabricated and heated cu(2)o/cuo bilayers with enhanced photovoltaic characteristics |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8529892/ https://www.ncbi.nlm.nih.gov/pubmed/34693180 http://dx.doi.org/10.1021/acsomega.1c05163 |
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