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Molecular dynamics simulation on the reaction of nano-aluminum with water: size and passivation effects

The reaction of aluminum and water is widely used in the field of propulsion and hydrogen production, but its reaction characteristics at the nanometer scale have not been fully studied. In this paper, the effect of particle size and surface passivation of aluminum particle on the reaction mechanism...

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Autores principales: Dong, Rui-Kang, Mei, Zheng, Zhao, Feng-Qi, Xu, Si-Yu, Ju, Xue-Hai
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/PMC9076561/
https://www.ncbi.nlm.nih.gov/pubmed/35541598
http://dx.doi.org/10.1039/c9ra08484c
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author Dong, Rui-Kang
Mei, Zheng
Zhao, Feng-Qi
Xu, Si-Yu
Ju, Xue-Hai
author_facet Dong, Rui-Kang
Mei, Zheng
Zhao, Feng-Qi
Xu, Si-Yu
Ju, Xue-Hai
author_sort Dong, Rui-Kang
collection PubMed
description The reaction of aluminum and water is widely used in the field of propulsion and hydrogen production, but its reaction characteristics at the nanometer scale have not been fully studied. In this paper, the effect of particle size and surface passivation of aluminum particle on the reaction mechanism was studied by using reactive molecular dynamics (RMD) simulation. The reduction of aluminum particle size can accelerate the reaction rate in the medium term (20–80 ps) due to the increase of activity, but it also produces an agglomeration effect as the temperature increases. The presence of surface passivation reduces the proportion of active aluminum and the yield of hydrogen decreases by 30% and 33%, respectively, as the particle size decreases from 2.5 nm to 1.6 nm. The addition of AlH(3) can overcome these drawbacks when some aluminum powders are replaced by AlH(3). The hydrogen yield is increased by the reaction 2AlH(3) + 3H(2)O → Al(2)O(3) + 6H(2). In the reaction of surface passivated Al (1.6 nm in diameter) and H(2)O, when the proportion of AlH(3) reaches 25%, the energy release and hydrogen yield increase from 59.47 kJ mol(−1) and 0.0042 mol g(−1) to 142.56 kJ mol(−1) and 0.0076 mol g(−1), respectively. This performance even approximates the reaction of pure aluminum with water: 180.67 kJ mol(−1) and 0.0087 mol g(−1). In addition, the surface passivation affects the reaction mechanism. Before the passivation layer melts, the reaction 4Al + Al(2)O(3) → 3Al(2)O occurs inside the nanoparticles.
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spelling pubmed-90765612022-05-09 Molecular dynamics simulation on the reaction of nano-aluminum with water: size and passivation effects Dong, Rui-Kang Mei, Zheng Zhao, Feng-Qi Xu, Si-Yu Ju, Xue-Hai RSC Adv Chemistry The reaction of aluminum and water is widely used in the field of propulsion and hydrogen production, but its reaction characteristics at the nanometer scale have not been fully studied. In this paper, the effect of particle size and surface passivation of aluminum particle on the reaction mechanism was studied by using reactive molecular dynamics (RMD) simulation. The reduction of aluminum particle size can accelerate the reaction rate in the medium term (20–80 ps) due to the increase of activity, but it also produces an agglomeration effect as the temperature increases. The presence of surface passivation reduces the proportion of active aluminum and the yield of hydrogen decreases by 30% and 33%, respectively, as the particle size decreases from 2.5 nm to 1.6 nm. The addition of AlH(3) can overcome these drawbacks when some aluminum powders are replaced by AlH(3). The hydrogen yield is increased by the reaction 2AlH(3) + 3H(2)O → Al(2)O(3) + 6H(2). In the reaction of surface passivated Al (1.6 nm in diameter) and H(2)O, when the proportion of AlH(3) reaches 25%, the energy release and hydrogen yield increase from 59.47 kJ mol(−1) and 0.0042 mol g(−1) to 142.56 kJ mol(−1) and 0.0076 mol g(−1), respectively. This performance even approximates the reaction of pure aluminum with water: 180.67 kJ mol(−1) and 0.0087 mol g(−1). In addition, the surface passivation affects the reaction mechanism. Before the passivation layer melts, the reaction 4Al + Al(2)O(3) → 3Al(2)O occurs inside the nanoparticles. The Royal Society of Chemistry 2019-12-17 /pmc/articles/PMC9076561/ /pubmed/35541598 http://dx.doi.org/10.1039/c9ra08484c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Dong, Rui-Kang
Mei, Zheng
Zhao, Feng-Qi
Xu, Si-Yu
Ju, Xue-Hai
Molecular dynamics simulation on the reaction of nano-aluminum with water: size and passivation effects
title Molecular dynamics simulation on the reaction of nano-aluminum with water: size and passivation effects
title_full Molecular dynamics simulation on the reaction of nano-aluminum with water: size and passivation effects
title_fullStr Molecular dynamics simulation on the reaction of nano-aluminum with water: size and passivation effects
title_full_unstemmed Molecular dynamics simulation on the reaction of nano-aluminum with water: size and passivation effects
title_short Molecular dynamics simulation on the reaction of nano-aluminum with water: size and passivation effects
title_sort molecular dynamics simulation on the reaction of nano-aluminum with water: size and passivation effects
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076561/
https://www.ncbi.nlm.nih.gov/pubmed/35541598
http://dx.doi.org/10.1039/c9ra08484c
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