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A photoanode with plasmonic nanoparticles of earth abundant bismuth for photoelectrochemical reactions
A wide range of technologies has been developed for producing hydrogen economically and in greener ways. Photoelectrochemical water splitting using photoelectrodes submerged in a bath electrolyte forms a major route of hydrogen evolution. The efficacy of water splitting is improved by sensitizing me...
Autores principales: | , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
RSC
2020
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9417614/ https://www.ncbi.nlm.nih.gov/pubmed/36133886 http://dx.doi.org/10.1039/d0na00641f |
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author | Subramanyam, Palyam Deepa, Melepurath Raavi, Sai Santosh Kumar Misawa, Hiroaki Biju, Vasudevanpillai Subrahmanyam, Challapalli |
author_facet | Subramanyam, Palyam Deepa, Melepurath Raavi, Sai Santosh Kumar Misawa, Hiroaki Biju, Vasudevanpillai Subrahmanyam, Challapalli |
author_sort | Subramanyam, Palyam |
collection | PubMed |
description | A wide range of technologies has been developed for producing hydrogen economically and in greener ways. Photoelectrochemical water splitting using photoelectrodes submerged in a bath electrolyte forms a major route of hydrogen evolution. The efficacy of water splitting is improved by sensitizing metal oxide photoelectrodes with narrow bandgap semiconductors that efficiently absorb sunlight and generate and transport charge carriers. Here we show that the efficiencies of photocurrent generation and photoelectrochemical hydrogen evolution by the binary TiO(2)/Sb(2)S(3) anode increase by an order of magnitude upon the incorporation of the earth-abundant plasmonic bismuth nanoparticles into it. The ternary electrode TiO(2)/Bi nanoparticle/Sb(2)S(3) illuminated with sunlight provides us with a photocurrent density as high as 4.21 mA cm(−2) at 1.23 V, which is fourfold greater than that of the binary electrode and tenfold greater than that of pristine TiO(2). By using bismuth nanoparticles, we estimate the incident photon to current conversion efficiency at 31% and solar power conversion efficiency at 3.85%. Here the overall impact of bismuth nanoparticles is attributed to increases in the open-circuit voltage (860 mV), which is by expediting the transfer of photogenerated electrons from Sb(2)S(3) nanoparticles to the TiO(2) electrode, and short-circuit current (9.54 mA cm(−2)), which is by the plasmonic nearfield effect. By combining the cost-effective plasmonic bismuth nanoparticles with the narrow bandgap Sb(2)S(3) on the TiO(2) electrode, we develop a stable, ternary photoanode and accomplish high-efficiency photocurrent generation and hydrogen evolution. |
format | Online Article Text |
id | pubmed-9417614 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | RSC |
record_format | MEDLINE/PubMed |
spelling | pubmed-94176142022-09-20 A photoanode with plasmonic nanoparticles of earth abundant bismuth for photoelectrochemical reactions Subramanyam, Palyam Deepa, Melepurath Raavi, Sai Santosh Kumar Misawa, Hiroaki Biju, Vasudevanpillai Subrahmanyam, Challapalli Nanoscale Adv Chemistry A wide range of technologies has been developed for producing hydrogen economically and in greener ways. Photoelectrochemical water splitting using photoelectrodes submerged in a bath electrolyte forms a major route of hydrogen evolution. The efficacy of water splitting is improved by sensitizing metal oxide photoelectrodes with narrow bandgap semiconductors that efficiently absorb sunlight and generate and transport charge carriers. Here we show that the efficiencies of photocurrent generation and photoelectrochemical hydrogen evolution by the binary TiO(2)/Sb(2)S(3) anode increase by an order of magnitude upon the incorporation of the earth-abundant plasmonic bismuth nanoparticles into it. The ternary electrode TiO(2)/Bi nanoparticle/Sb(2)S(3) illuminated with sunlight provides us with a photocurrent density as high as 4.21 mA cm(−2) at 1.23 V, which is fourfold greater than that of the binary electrode and tenfold greater than that of pristine TiO(2). By using bismuth nanoparticles, we estimate the incident photon to current conversion efficiency at 31% and solar power conversion efficiency at 3.85%. Here the overall impact of bismuth nanoparticles is attributed to increases in the open-circuit voltage (860 mV), which is by expediting the transfer of photogenerated electrons from Sb(2)S(3) nanoparticles to the TiO(2) electrode, and short-circuit current (9.54 mA cm(−2)), which is by the plasmonic nearfield effect. By combining the cost-effective plasmonic bismuth nanoparticles with the narrow bandgap Sb(2)S(3) on the TiO(2) electrode, we develop a stable, ternary photoanode and accomplish high-efficiency photocurrent generation and hydrogen evolution. RSC 2020-10-09 /pmc/articles/PMC9417614/ /pubmed/36133886 http://dx.doi.org/10.1039/d0na00641f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/ |
spellingShingle | Chemistry Subramanyam, Palyam Deepa, Melepurath Raavi, Sai Santosh Kumar Misawa, Hiroaki Biju, Vasudevanpillai Subrahmanyam, Challapalli A photoanode with plasmonic nanoparticles of earth abundant bismuth for photoelectrochemical reactions |
title | A photoanode with plasmonic nanoparticles of earth abundant bismuth for photoelectrochemical reactions |
title_full | A photoanode with plasmonic nanoparticles of earth abundant bismuth for photoelectrochemical reactions |
title_fullStr | A photoanode with plasmonic nanoparticles of earth abundant bismuth for photoelectrochemical reactions |
title_full_unstemmed | A photoanode with plasmonic nanoparticles of earth abundant bismuth for photoelectrochemical reactions |
title_short | A photoanode with plasmonic nanoparticles of earth abundant bismuth for photoelectrochemical reactions |
title_sort | photoanode with plasmonic nanoparticles of earth abundant bismuth for photoelectrochemical reactions |
topic | Chemistry |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9417614/ https://www.ncbi.nlm.nih.gov/pubmed/36133886 http://dx.doi.org/10.1039/d0na00641f |
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