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3D-printed Cu(2)O photoelectrodes for photoelectrochemical water splitting

Photoelectrochemical (PEC) water splitting is an alternative to fossil fuel combustion involving the generation of renewable hydrogen without environmental pollution or greenhouse gas emissions. Cuprous oxide (Cu(2)O) is a promising semiconducting material for the simple reduction of hydrogen from w...

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Autores principales: Ahn, Jinhyuck, Lee, Sanghyeon, Kim, Jung Hyun, Wajahat, Muhammad, Sim, Ho Hyung, Bae, Jongcheon, Pyo, Jaeyeon, Jahandar, Muhammad, Lim, Dong Chan, Seol, Seung Kwon
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419027/
https://www.ncbi.nlm.nih.gov/pubmed/36133885
http://dx.doi.org/10.1039/d0na00512f
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author Ahn, Jinhyuck
Lee, Sanghyeon
Kim, Jung Hyun
Wajahat, Muhammad
Sim, Ho Hyung
Bae, Jongcheon
Pyo, Jaeyeon
Jahandar, Muhammad
Lim, Dong Chan
Seol, Seung Kwon
author_facet Ahn, Jinhyuck
Lee, Sanghyeon
Kim, Jung Hyun
Wajahat, Muhammad
Sim, Ho Hyung
Bae, Jongcheon
Pyo, Jaeyeon
Jahandar, Muhammad
Lim, Dong Chan
Seol, Seung Kwon
author_sort Ahn, Jinhyuck
collection PubMed
description Photoelectrochemical (PEC) water splitting is an alternative to fossil fuel combustion involving the generation of renewable hydrogen without environmental pollution or greenhouse gas emissions. Cuprous oxide (Cu(2)O) is a promising semiconducting material for the simple reduction of hydrogen from water, in which the conduction band edge is slightly negative compared to the water reduction potential. However, the solar-to-hydrogen conversion efficiency of Cu(2)O is lower than the theoretical value due to a short carrier-diffusion length under the effective light absorption depth. Thus, increasing light absorption in the electrode–electrolyte interfacial layer of a Cu(2)O photoelectrode can enhance PEC performance. In this study, a Cu(2)O 3D photoelectrode comprised of pyramid arrays was fabricated using a two-step method involving direct-ink-writing of graphene structures. This was followed by the electrodeposition of a Cu current-collecting layer and a p–n homojunction Cu(2)O photocatalyst layer onto the printed structures. The performance for PEC water splitting was enhanced by increasing the total light absorption area (A(a)) of the photoelectrode via controlling the electrode topography. The 3D photoelectrode (A(a) = 3.2 cm(2)) printed on the substrate area of 1.0 cm(2) exhibited a photocurrent (I(ph)) of −3.01 mA at 0.02 V (vs. RHE), which is approximately three times higher than that of a planar photoelectrode with an A(a) = 1.0 cm(2) (I(ph) = −0.91 mA). Our 3D printing strategy provides a flexible approach for the design and the fabrication of highly efficient PEC photoelectrodes.
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spelling pubmed-94190272022-09-20 3D-printed Cu(2)O photoelectrodes for photoelectrochemical water splitting Ahn, Jinhyuck Lee, Sanghyeon Kim, Jung Hyun Wajahat, Muhammad Sim, Ho Hyung Bae, Jongcheon Pyo, Jaeyeon Jahandar, Muhammad Lim, Dong Chan Seol, Seung Kwon Nanoscale Adv Chemistry Photoelectrochemical (PEC) water splitting is an alternative to fossil fuel combustion involving the generation of renewable hydrogen without environmental pollution or greenhouse gas emissions. Cuprous oxide (Cu(2)O) is a promising semiconducting material for the simple reduction of hydrogen from water, in which the conduction band edge is slightly negative compared to the water reduction potential. However, the solar-to-hydrogen conversion efficiency of Cu(2)O is lower than the theoretical value due to a short carrier-diffusion length under the effective light absorption depth. Thus, increasing light absorption in the electrode–electrolyte interfacial layer of a Cu(2)O photoelectrode can enhance PEC performance. In this study, a Cu(2)O 3D photoelectrode comprised of pyramid arrays was fabricated using a two-step method involving direct-ink-writing of graphene structures. This was followed by the electrodeposition of a Cu current-collecting layer and a p–n homojunction Cu(2)O photocatalyst layer onto the printed structures. The performance for PEC water splitting was enhanced by increasing the total light absorption area (A(a)) of the photoelectrode via controlling the electrode topography. The 3D photoelectrode (A(a) = 3.2 cm(2)) printed on the substrate area of 1.0 cm(2) exhibited a photocurrent (I(ph)) of −3.01 mA at 0.02 V (vs. RHE), which is approximately three times higher than that of a planar photoelectrode with an A(a) = 1.0 cm(2) (I(ph) = −0.91 mA). Our 3D printing strategy provides a flexible approach for the design and the fabrication of highly efficient PEC photoelectrodes. RSC 2020-09-07 /pmc/articles/PMC9419027/ /pubmed/36133885 http://dx.doi.org/10.1039/d0na00512f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ahn, Jinhyuck
Lee, Sanghyeon
Kim, Jung Hyun
Wajahat, Muhammad
Sim, Ho Hyung
Bae, Jongcheon
Pyo, Jaeyeon
Jahandar, Muhammad
Lim, Dong Chan
Seol, Seung Kwon
3D-printed Cu(2)O photoelectrodes for photoelectrochemical water splitting
title 3D-printed Cu(2)O photoelectrodes for photoelectrochemical water splitting
title_full 3D-printed Cu(2)O photoelectrodes for photoelectrochemical water splitting
title_fullStr 3D-printed Cu(2)O photoelectrodes for photoelectrochemical water splitting
title_full_unstemmed 3D-printed Cu(2)O photoelectrodes for photoelectrochemical water splitting
title_short 3D-printed Cu(2)O photoelectrodes for photoelectrochemical water splitting
title_sort 3d-printed cu(2)o photoelectrodes for photoelectrochemical water splitting
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419027/
https://www.ncbi.nlm.nih.gov/pubmed/36133885
http://dx.doi.org/10.1039/d0na00512f
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