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Photocurrent generation by a photosystem I-NiO photocathode for a p-type biophotovoltaic tandem cell

Photosynthesis is a process used by algae and plants to convert light energy into chemical energy. Due to their uniquely natural and environmentally friendly nature, photosynthetic proteins have attracted attention for use in a variety of artificial applications. Among the various types, biophotovol...

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Autores principales: Takekuma, Yuya, Ikeda, Nobuhiro, Kawakami, Keisuke, Kamiya, Nobuo, Nango, Mamoru, Nagata, Morio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9052782/
https://www.ncbi.nlm.nih.gov/pubmed/35493643
http://dx.doi.org/10.1039/d0ra01793k
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author Takekuma, Yuya
Ikeda, Nobuhiro
Kawakami, Keisuke
Kamiya, Nobuo
Nango, Mamoru
Nagata, Morio
author_facet Takekuma, Yuya
Ikeda, Nobuhiro
Kawakami, Keisuke
Kamiya, Nobuo
Nango, Mamoru
Nagata, Morio
author_sort Takekuma, Yuya
collection PubMed
description Photosynthesis is a process used by algae and plants to convert light energy into chemical energy. Due to their uniquely natural and environmentally friendly nature, photosynthetic proteins have attracted attention for use in a variety of artificial applications. Among the various types, biophotovoltaics based on dye-sensitized solar cells have been demonstrated in many studies. Although most related works have used n-type semiconductors, a p-type semiconductor is also a significant potential component for tandem cells. In this work, we used mesoporous NiO as a p-type semiconductor substrate for Photosystem I (PSI) and demonstrated a p-type PSI-biophotovoltaic and tandem cell based on dye-sensitized solar cells. Under visible light illumination, the PSI-adsorbed NiO electrode generated a cathodic photocurrent. The p-type biophotovoltaic cell using the PSI-adsorbed NiO electrode generated electricity, and the IPCE spectrum was consistent with the absorption spectrum of PSI. These results indicate that the PSI-adsorbed NiO electrode acts as a photocathode. Moreover, a tandem cell consisting of the PSI-NiO photocathode and a PSI-TiO(2) photoanode showed a high open-circuit voltage of over 0.7 V under illumination to the TiO(2) side. Thus, the tandem strategy can be utilized for biophotovoltaics, and the use of other biomaterials that match the solar spectrum will lead to further progress in photovoltaic performance.
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spelling pubmed-90527822022-04-29 Photocurrent generation by a photosystem I-NiO photocathode for a p-type biophotovoltaic tandem cell Takekuma, Yuya Ikeda, Nobuhiro Kawakami, Keisuke Kamiya, Nobuo Nango, Mamoru Nagata, Morio RSC Adv Chemistry Photosynthesis is a process used by algae and plants to convert light energy into chemical energy. Due to their uniquely natural and environmentally friendly nature, photosynthetic proteins have attracted attention for use in a variety of artificial applications. Among the various types, biophotovoltaics based on dye-sensitized solar cells have been demonstrated in many studies. Although most related works have used n-type semiconductors, a p-type semiconductor is also a significant potential component for tandem cells. In this work, we used mesoporous NiO as a p-type semiconductor substrate for Photosystem I (PSI) and demonstrated a p-type PSI-biophotovoltaic and tandem cell based on dye-sensitized solar cells. Under visible light illumination, the PSI-adsorbed NiO electrode generated a cathodic photocurrent. The p-type biophotovoltaic cell using the PSI-adsorbed NiO electrode generated electricity, and the IPCE spectrum was consistent with the absorption spectrum of PSI. These results indicate that the PSI-adsorbed NiO electrode acts as a photocathode. Moreover, a tandem cell consisting of the PSI-NiO photocathode and a PSI-TiO(2) photoanode showed a high open-circuit voltage of over 0.7 V under illumination to the TiO(2) side. Thus, the tandem strategy can be utilized for biophotovoltaics, and the use of other biomaterials that match the solar spectrum will lead to further progress in photovoltaic performance. The Royal Society of Chemistry 2020-04-21 /pmc/articles/PMC9052782/ /pubmed/35493643 http://dx.doi.org/10.1039/d0ra01793k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Takekuma, Yuya
Ikeda, Nobuhiro
Kawakami, Keisuke
Kamiya, Nobuo
Nango, Mamoru
Nagata, Morio
Photocurrent generation by a photosystem I-NiO photocathode for a p-type biophotovoltaic tandem cell
title Photocurrent generation by a photosystem I-NiO photocathode for a p-type biophotovoltaic tandem cell
title_full Photocurrent generation by a photosystem I-NiO photocathode for a p-type biophotovoltaic tandem cell
title_fullStr Photocurrent generation by a photosystem I-NiO photocathode for a p-type biophotovoltaic tandem cell
title_full_unstemmed Photocurrent generation by a photosystem I-NiO photocathode for a p-type biophotovoltaic tandem cell
title_short Photocurrent generation by a photosystem I-NiO photocathode for a p-type biophotovoltaic tandem cell
title_sort photocurrent generation by a photosystem i-nio photocathode for a p-type biophotovoltaic tandem cell
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9052782/
https://www.ncbi.nlm.nih.gov/pubmed/35493643
http://dx.doi.org/10.1039/d0ra01793k
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