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Hydrolytic dehydrogenation of NH(3)BH(3) catalyzed by ruthenium nanoparticles supported on magnesium–aluminum layered double-hydroxides

Ammonia borane (AB, NH(3)BH(3)) with extremely high hydrogen content (19.6 wt%) is considered to be one of the most promising chemical hydrides for storing hydrogen. According to the starting materials of AB and H(2)O, a hydrogen capacity of 7.8 wt% is achieved for the AB hydrolytic dehydrogenation...

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Autores principales: Qiu, Xueying, Liu, Jiaxi, Huang, Pengru, Qiu, Shujun, Weng, Chaoming, Chu, Hailiang, Zou, Yongjin, Xiang, Cuili, Xu, Fen, Sun, Lixian
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/PMC9052328/
https://www.ncbi.nlm.nih.gov/pubmed/35498595
http://dx.doi.org/10.1039/d0ra01720e
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author Qiu, Xueying
Liu, Jiaxi
Huang, Pengru
Qiu, Shujun
Weng, Chaoming
Chu, Hailiang
Zou, Yongjin
Xiang, Cuili
Xu, Fen
Sun, Lixian
author_facet Qiu, Xueying
Liu, Jiaxi
Huang, Pengru
Qiu, Shujun
Weng, Chaoming
Chu, Hailiang
Zou, Yongjin
Xiang, Cuili
Xu, Fen
Sun, Lixian
author_sort Qiu, Xueying
collection PubMed
description Ammonia borane (AB, NH(3)BH(3)) with extremely high hydrogen content (19.6 wt%) is considered to be one of the most promising chemical hydrides for storing hydrogen. According to the starting materials of AB and H(2)O, a hydrogen capacity of 7.8 wt% is achieved for the AB hydrolytic dehydrogenation system with the presence of a highly efficient catalyst. In this work, ruthenium nanoparticles supported on magnesium–aluminum layered double hydroxides (Ru/MgAl-LDHs) were successfully synthesized via a simple method, i.e., chemical reduction. The effect of Mg/Al molar ratios in MgAl-LDHs on the catalytic performance for AB hydrolytic dehydrogenation was systematically investigated. Catalyzed by the as-synthesized Ru/Mg(1)Al(1)-LDHs catalyst, it took about 130 s at room temperature to complete the hydrolysis reaction of AB, which achieved a rate of hydrogen production of about 740 ml s(−1) g(−1). Furthermore, a relatively high activity (TOF = 137.1 mol(H(2)) mol(Ru)(−1) min(−1)), low activation energy (E(a) = 30.8 kJ mol(−1)) and fairly good recyclability of the Ru/Mg(1)Al(1)-LDHs catalyst in ten cycles were achieved toward AB hydrolysis for hydrogen generation. More importantly, the mechanism of AB hydrolysis catalyzed by Ru/MgAl-LDHs was simulated via density functional theory. The facile preparation and high catalytic performance of Ru/MgAl-LDHs make it an efficient catalyst for hydrolytic dehydrogenation of AB.
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spelling pubmed-90523282022-04-29 Hydrolytic dehydrogenation of NH(3)BH(3) catalyzed by ruthenium nanoparticles supported on magnesium–aluminum layered double-hydroxides Qiu, Xueying Liu, Jiaxi Huang, Pengru Qiu, Shujun Weng, Chaoming Chu, Hailiang Zou, Yongjin Xiang, Cuili Xu, Fen Sun, Lixian RSC Adv Chemistry Ammonia borane (AB, NH(3)BH(3)) with extremely high hydrogen content (19.6 wt%) is considered to be one of the most promising chemical hydrides for storing hydrogen. According to the starting materials of AB and H(2)O, a hydrogen capacity of 7.8 wt% is achieved for the AB hydrolytic dehydrogenation system with the presence of a highly efficient catalyst. In this work, ruthenium nanoparticles supported on magnesium–aluminum layered double hydroxides (Ru/MgAl-LDHs) were successfully synthesized via a simple method, i.e., chemical reduction. The effect of Mg/Al molar ratios in MgAl-LDHs on the catalytic performance for AB hydrolytic dehydrogenation was systematically investigated. Catalyzed by the as-synthesized Ru/Mg(1)Al(1)-LDHs catalyst, it took about 130 s at room temperature to complete the hydrolysis reaction of AB, which achieved a rate of hydrogen production of about 740 ml s(−1) g(−1). Furthermore, a relatively high activity (TOF = 137.1 mol(H(2)) mol(Ru)(−1) min(−1)), low activation energy (E(a) = 30.8 kJ mol(−1)) and fairly good recyclability of the Ru/Mg(1)Al(1)-LDHs catalyst in ten cycles were achieved toward AB hydrolysis for hydrogen generation. More importantly, the mechanism of AB hydrolysis catalyzed by Ru/MgAl-LDHs was simulated via density functional theory. The facile preparation and high catalytic performance of Ru/MgAl-LDHs make it an efficient catalyst for hydrolytic dehydrogenation of AB. The Royal Society of Chemistry 2020-03-09 /pmc/articles/PMC9052328/ /pubmed/35498595 http://dx.doi.org/10.1039/d0ra01720e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Qiu, Xueying
Liu, Jiaxi
Huang, Pengru
Qiu, Shujun
Weng, Chaoming
Chu, Hailiang
Zou, Yongjin
Xiang, Cuili
Xu, Fen
Sun, Lixian
Hydrolytic dehydrogenation of NH(3)BH(3) catalyzed by ruthenium nanoparticles supported on magnesium–aluminum layered double-hydroxides
title Hydrolytic dehydrogenation of NH(3)BH(3) catalyzed by ruthenium nanoparticles supported on magnesium–aluminum layered double-hydroxides
title_full Hydrolytic dehydrogenation of NH(3)BH(3) catalyzed by ruthenium nanoparticles supported on magnesium–aluminum layered double-hydroxides
title_fullStr Hydrolytic dehydrogenation of NH(3)BH(3) catalyzed by ruthenium nanoparticles supported on magnesium–aluminum layered double-hydroxides
title_full_unstemmed Hydrolytic dehydrogenation of NH(3)BH(3) catalyzed by ruthenium nanoparticles supported on magnesium–aluminum layered double-hydroxides
title_short Hydrolytic dehydrogenation of NH(3)BH(3) catalyzed by ruthenium nanoparticles supported on magnesium–aluminum layered double-hydroxides
title_sort hydrolytic dehydrogenation of nh(3)bh(3) catalyzed by ruthenium nanoparticles supported on magnesium–aluminum layered double-hydroxides
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9052328/
https://www.ncbi.nlm.nih.gov/pubmed/35498595
http://dx.doi.org/10.1039/d0ra01720e
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