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Laser-Induced Methanol Decomposition for Ultrafast Hydrogen Production

Methanol (CH(3)OH) is a liquid hydrogen (H(2)) source that effectively releases H(2) and is convenient for transportation. Traditional thermocatalytic CH(3)OH reforming reaction is used to produce H(2), but this process needs to undergo high reaction temperature (e.g., 200 °C) along with a catalyst...

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Autores principales: Cao, Weiwei, Li, Yinwu, Yan, Bo, Zeng, Zhiping, Liu, Pu, Ke, Zhuofeng, Yang, Guowei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10204739/
https://www.ncbi.nlm.nih.gov/pubmed/37228638
http://dx.doi.org/10.34133/research.0132
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author Cao, Weiwei
Li, Yinwu
Yan, Bo
Zeng, Zhiping
Liu, Pu
Ke, Zhuofeng
Yang, Guowei
author_facet Cao, Weiwei
Li, Yinwu
Yan, Bo
Zeng, Zhiping
Liu, Pu
Ke, Zhuofeng
Yang, Guowei
author_sort Cao, Weiwei
collection PubMed
description Methanol (CH(3)OH) is a liquid hydrogen (H(2)) source that effectively releases H(2) and is convenient for transportation. Traditional thermocatalytic CH(3)OH reforming reaction is used to produce H(2), but this process needs to undergo high reaction temperature (e.g., 200 °C) along with a catalyst and a large amount of carbon dioxide (CO(2)) emission. Although photocatalysis and photothermal catalysis under mild conditions are proposed to replace the traditional thermal catalysis to produce H(2) from CH(3)OH, they still inevitably produce CO(2) emissions that are detrimental to carbon neutrality. Here, we, for the first time, report an ultrafast and highly selective production of H(2) without any catalysts and no CO(2) emission from CH(3)OH by laser bubbling in liquid (LBL) at room temperature and atmospheric pressure. We demonstrate that a super high H(2) yield rate of 33.41 mmol·h(−1) with 94.26% selectivity is achieved upon the laser-driven process. This yield is 3 orders of magnitude higher than the best value reported for photocatalytic and photothermal catalytic H(2) production from CH(3)OH to date. The energy conversion efficiency of laser light to H(2) and CO can be up to 8.5%. We also establish that the far from thermodynamic equilibrium state with high temperature inside the laser-induced bubble and the kinetic process of rapid quenching of bubbles play crucial roles in H(2) production upon LBL. Thermodynamically, the high temperature induced using laser in bubbles ensures fast and efficient release of H(2) from CH(3)OH decomposition. Kinetically, rapidly quenching of laser-induced bubbles can inhibit reverse reaction and can keep the products in the initial stage, which guarantees high selectivity. This study presents a laser-driven ultrafast and highly selective production of H(2) from CH(3)OH under normal conditions beyond catalytic chemistry.
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spelling pubmed-102047392023-05-24 Laser-Induced Methanol Decomposition for Ultrafast Hydrogen Production Cao, Weiwei Li, Yinwu Yan, Bo Zeng, Zhiping Liu, Pu Ke, Zhuofeng Yang, Guowei Research (Wash D C) Research Article Methanol (CH(3)OH) is a liquid hydrogen (H(2)) source that effectively releases H(2) and is convenient for transportation. Traditional thermocatalytic CH(3)OH reforming reaction is used to produce H(2), but this process needs to undergo high reaction temperature (e.g., 200 °C) along with a catalyst and a large amount of carbon dioxide (CO(2)) emission. Although photocatalysis and photothermal catalysis under mild conditions are proposed to replace the traditional thermal catalysis to produce H(2) from CH(3)OH, they still inevitably produce CO(2) emissions that are detrimental to carbon neutrality. Here, we, for the first time, report an ultrafast and highly selective production of H(2) without any catalysts and no CO(2) emission from CH(3)OH by laser bubbling in liquid (LBL) at room temperature and atmospheric pressure. We demonstrate that a super high H(2) yield rate of 33.41 mmol·h(−1) with 94.26% selectivity is achieved upon the laser-driven process. This yield is 3 orders of magnitude higher than the best value reported for photocatalytic and photothermal catalytic H(2) production from CH(3)OH to date. The energy conversion efficiency of laser light to H(2) and CO can be up to 8.5%. We also establish that the far from thermodynamic equilibrium state with high temperature inside the laser-induced bubble and the kinetic process of rapid quenching of bubbles play crucial roles in H(2) production upon LBL. Thermodynamically, the high temperature induced using laser in bubbles ensures fast and efficient release of H(2) from CH(3)OH decomposition. Kinetically, rapidly quenching of laser-induced bubbles can inhibit reverse reaction and can keep the products in the initial stage, which guarantees high selectivity. This study presents a laser-driven ultrafast and highly selective production of H(2) from CH(3)OH under normal conditions beyond catalytic chemistry. AAAS 2023-05-09 /pmc/articles/PMC10204739/ /pubmed/37228638 http://dx.doi.org/10.34133/research.0132 Text en Copyright © 2023 Weiwei Cao et al. https://creativecommons.org/licenses/by/4.0/Exclusive licensee Science and Technology Review Publishing House. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution License 4.0 (CC BY 4.0) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Cao, Weiwei
Li, Yinwu
Yan, Bo
Zeng, Zhiping
Liu, Pu
Ke, Zhuofeng
Yang, Guowei
Laser-Induced Methanol Decomposition for Ultrafast Hydrogen Production
title Laser-Induced Methanol Decomposition for Ultrafast Hydrogen Production
title_full Laser-Induced Methanol Decomposition for Ultrafast Hydrogen Production
title_fullStr Laser-Induced Methanol Decomposition for Ultrafast Hydrogen Production
title_full_unstemmed Laser-Induced Methanol Decomposition for Ultrafast Hydrogen Production
title_short Laser-Induced Methanol Decomposition for Ultrafast Hydrogen Production
title_sort laser-induced methanol decomposition for ultrafast hydrogen production
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10204739/
https://www.ncbi.nlm.nih.gov/pubmed/37228638
http://dx.doi.org/10.34133/research.0132
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