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Discovering a new MgH(2) metastable phase

Formation of a new metastable fcc-MgH(2) nanocrystalline phase upon mechanically-induced plastic deformation of MgH(2) powders is reported. Our results have shown that cold rolling of mechanically reacted MgH(2) powders for 200 passes introduced severe plastic deformation of the powders and led to f...

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Autores principales: El-Eskandarany, Mohamed Sherif, Banyan, Mohammad, Al-Ajmi, Fahad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9085899/
https://www.ncbi.nlm.nih.gov/pubmed/35547505
http://dx.doi.org/10.1039/c8ra07068g
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author El-Eskandarany, Mohamed Sherif
Banyan, Mohammad
Al-Ajmi, Fahad
author_facet El-Eskandarany, Mohamed Sherif
Banyan, Mohammad
Al-Ajmi, Fahad
author_sort El-Eskandarany, Mohamed Sherif
collection PubMed
description Formation of a new metastable fcc-MgH(2) nanocrystalline phase upon mechanically-induced plastic deformation of MgH(2) powders is reported. Our results have shown that cold rolling of mechanically reacted MgH(2) powders for 200 passes introduced severe plastic deformation of the powders and led to formation of micro-lathes consisting of γ- and β-MgH(2) phases. The cold rolled powders were subjected to different types of defects, exemplified by dislocations, stacking faults, and twinning upon high-energy ball milling. Long term ball milling (50 hours) destabilized β-MgH(2) (the most stable phase) and γ-MgH(2) (the metastable phase), leading to the formation of a new phase of face centered cubic structure (fcc). The lattice parameter of fcc-MgH(2) phase was calculated and found to be 0.4436 nm. This discovered phase possessed high hydrogen storage capacity (6.6 wt%) and revealed excellent desorption kinetics (7 min) at 275 °C. We also demonstrated a cyclic-phase-transformation conducted between these three phases upon changing the ball milling time to 200 hours.
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spelling pubmed-90858992022-05-10 Discovering a new MgH(2) metastable phase El-Eskandarany, Mohamed Sherif Banyan, Mohammad Al-Ajmi, Fahad RSC Adv Chemistry Formation of a new metastable fcc-MgH(2) nanocrystalline phase upon mechanically-induced plastic deformation of MgH(2) powders is reported. Our results have shown that cold rolling of mechanically reacted MgH(2) powders for 200 passes introduced severe plastic deformation of the powders and led to formation of micro-lathes consisting of γ- and β-MgH(2) phases. The cold rolled powders were subjected to different types of defects, exemplified by dislocations, stacking faults, and twinning upon high-energy ball milling. Long term ball milling (50 hours) destabilized β-MgH(2) (the most stable phase) and γ-MgH(2) (the metastable phase), leading to the formation of a new phase of face centered cubic structure (fcc). The lattice parameter of fcc-MgH(2) phase was calculated and found to be 0.4436 nm. This discovered phase possessed high hydrogen storage capacity (6.6 wt%) and revealed excellent desorption kinetics (7 min) at 275 °C. We also demonstrated a cyclic-phase-transformation conducted between these three phases upon changing the ball milling time to 200 hours. The Royal Society of Chemistry 2018-09-14 /pmc/articles/PMC9085899/ /pubmed/35547505 http://dx.doi.org/10.1039/c8ra07068g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
El-Eskandarany, Mohamed Sherif
Banyan, Mohammad
Al-Ajmi, Fahad
Discovering a new MgH(2) metastable phase
title Discovering a new MgH(2) metastable phase
title_full Discovering a new MgH(2) metastable phase
title_fullStr Discovering a new MgH(2) metastable phase
title_full_unstemmed Discovering a new MgH(2) metastable phase
title_short Discovering a new MgH(2) metastable phase
title_sort discovering a new mgh(2) metastable phase
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9085899/
https://www.ncbi.nlm.nih.gov/pubmed/35547505
http://dx.doi.org/10.1039/c8ra07068g
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