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Rhodopseudomonas palustris-based conversion of organic acids to hydrogen using plasmonic nanoparticles and near-infrared light

The simultaneous elimination of organic waste and the production of clean fuels will have an immense impact on both the society and the industrial manufacturing sector. The enhanced understanding of the interface between nanoparticles and photo-responsive bacteria will further advance the knowledge...

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Autores principales: Craven, John, Sultan, Mansoor A., Sarma, Rupam, Wilson, Sarah, Meeks, Noah, Kim, Doo Young, Hastings, J. Todd, Bhattacharyya, Dibakar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076380/
https://www.ncbi.nlm.nih.gov/pubmed/35540054
http://dx.doi.org/10.1039/c9ra08747h
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author Craven, John
Sultan, Mansoor A.
Sarma, Rupam
Wilson, Sarah
Meeks, Noah
Kim, Doo Young
Hastings, J. Todd
Bhattacharyya, Dibakar
author_facet Craven, John
Sultan, Mansoor A.
Sarma, Rupam
Wilson, Sarah
Meeks, Noah
Kim, Doo Young
Hastings, J. Todd
Bhattacharyya, Dibakar
author_sort Craven, John
collection PubMed
description The simultaneous elimination of organic waste and the production of clean fuels will have an immense impact on both the society and the industrial manufacturing sector. The enhanced understanding of the interface between nanoparticles and photo-responsive bacteria will further advance the knowledge of their interactions with biological systems. Although literature shows the production of gases by photobacteria, herein, we demonstrated the integration of photonics, biology, and nanostructured plasmonic materials for hydrogen production with a lower greenhouse CO(2) gas content at quantified light energy intensity and wavelength. Phototrophic purple non-sulfur bacteria were able to generate hydrogen as a byproduct of nitrogen fixation using the energy absorbed from visible and near-IR (NIR) light. This type of biological hydrogen production has suffered from low efficiency of converting light energy into hydrogen in part due to light sources that do not exploit the organisms' capacity for NIR absorption. We used NIR light sources and optically resonant gold–silica core–shell nanoparticles to increase the light utilization of the bacteria to convert waste organic acids such as acetic and maleic acids to hydrogen. The batch growth studies for the small cultures (40 mL) of Rhodopseudomonas palustris demonstrated >2.5-fold increase in hydrogen production when grown under an NIR source (167 ± 18 μmol H(2)) compared to that for a broad-band light source (60 ± 6 μmol H(2)) at equal light intensity (130 W m(−2)). The addition of the mPEG-coated optically resonant gold–silica core–shell nanoparticles in the solution further improved the hydrogen production from 167 ± 18 to 398 ± 108 μmol H(2) at 130 W m(−2). The average hydrogen production rate with the nanoparticles was 127 ± 35 μmol L(−1) h(−1) at 130 W m(−2).
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spelling pubmed-90763802022-05-09 Rhodopseudomonas palustris-based conversion of organic acids to hydrogen using plasmonic nanoparticles and near-infrared light Craven, John Sultan, Mansoor A. Sarma, Rupam Wilson, Sarah Meeks, Noah Kim, Doo Young Hastings, J. Todd Bhattacharyya, Dibakar RSC Adv Chemistry The simultaneous elimination of organic waste and the production of clean fuels will have an immense impact on both the society and the industrial manufacturing sector. The enhanced understanding of the interface between nanoparticles and photo-responsive bacteria will further advance the knowledge of their interactions with biological systems. Although literature shows the production of gases by photobacteria, herein, we demonstrated the integration of photonics, biology, and nanostructured plasmonic materials for hydrogen production with a lower greenhouse CO(2) gas content at quantified light energy intensity and wavelength. Phototrophic purple non-sulfur bacteria were able to generate hydrogen as a byproduct of nitrogen fixation using the energy absorbed from visible and near-IR (NIR) light. This type of biological hydrogen production has suffered from low efficiency of converting light energy into hydrogen in part due to light sources that do not exploit the organisms' capacity for NIR absorption. We used NIR light sources and optically resonant gold–silica core–shell nanoparticles to increase the light utilization of the bacteria to convert waste organic acids such as acetic and maleic acids to hydrogen. The batch growth studies for the small cultures (40 mL) of Rhodopseudomonas palustris demonstrated >2.5-fold increase in hydrogen production when grown under an NIR source (167 ± 18 μmol H(2)) compared to that for a broad-band light source (60 ± 6 μmol H(2)) at equal light intensity (130 W m(−2)). The addition of the mPEG-coated optically resonant gold–silica core–shell nanoparticles in the solution further improved the hydrogen production from 167 ± 18 to 398 ± 108 μmol H(2) at 130 W m(−2). The average hydrogen production rate with the nanoparticles was 127 ± 35 μmol L(−1) h(−1) at 130 W m(−2). The Royal Society of Chemistry 2019-12-13 /pmc/articles/PMC9076380/ /pubmed/35540054 http://dx.doi.org/10.1039/c9ra08747h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Craven, John
Sultan, Mansoor A.
Sarma, Rupam
Wilson, Sarah
Meeks, Noah
Kim, Doo Young
Hastings, J. Todd
Bhattacharyya, Dibakar
Rhodopseudomonas palustris-based conversion of organic acids to hydrogen using plasmonic nanoparticles and near-infrared light
title Rhodopseudomonas palustris-based conversion of organic acids to hydrogen using plasmonic nanoparticles and near-infrared light
title_full Rhodopseudomonas palustris-based conversion of organic acids to hydrogen using plasmonic nanoparticles and near-infrared light
title_fullStr Rhodopseudomonas palustris-based conversion of organic acids to hydrogen using plasmonic nanoparticles and near-infrared light
title_full_unstemmed Rhodopseudomonas palustris-based conversion of organic acids to hydrogen using plasmonic nanoparticles and near-infrared light
title_short Rhodopseudomonas palustris-based conversion of organic acids to hydrogen using plasmonic nanoparticles and near-infrared light
title_sort rhodopseudomonas palustris-based conversion of organic acids to hydrogen using plasmonic nanoparticles and near-infrared light
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076380/
https://www.ncbi.nlm.nih.gov/pubmed/35540054
http://dx.doi.org/10.1039/c9ra08747h
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