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Hydrogenation Properties of Mg-Al-Zn-CaO-H x Prepared by Hydrogen Induced Mechanical Alloying (HIMA).

Authors :
Han JH
Kim MG
Lee YH
Hong TW
Source :
Journal of nanoscience and nanotechnology [J Nanosci Nanotechnol] 2020 Jan 01; Vol. 20 (1), pp. 409-414.
Publication Year :
2020

Abstract

Mg and Mg-system alloys are the materials of choice among hydrogen energy storage media due to their high hydrogen storage capacity (7.6 wt.%) and lighter weight (Huot, J., et al., 1999 . Structural study and hydrogen sorption kinetics of ball-milled magnesium hydride. Journal of Alloys and Compounds, 293 , pp.495-500). However, the formation of hydrogen products at high temperatures, the phenomenon of rapid alloy deterioration, and the low rate of reaction in the hydriding and dehydriding processes have been the main hindrances to commercialization of these alloys for hydrogen storage. In this study, to increase the reaction rate with hydrogen, Mg-Al-Zn-CaO-H <subscript> x </subscript> hydrogen storage alloys were fabricated HIMA (Seok, S., et al., 2005 . Evaluations of microstructure and hydrogenation properties on Mg₂NiH <subscript> x </subscript> . Transactions of the Korean Hydrogen and New Energy Society , 16(3), pp.238-243). The Alloying times of 72 and 96 h and BCR of 30:1 and 66:1 were used for the HIMA process; the rotation speed was fixed at 200 rpm and the hydrogen pressure was 3 Mpa. SEM was used to confirm the shape of the particles. The crystal structure of the synthesized materials was analyzed by XRD, and BET measurements were performed to determine the correlation between the BCR and specific surface area. The weight change of the composite material was measured by TGA, and the kinetics was evaluated to determine the hydrogen adsorption rate (at 150, 250, and 350 °C).

Details

Language :
English
ISSN :
1533-4899
Volume :
20
Issue :
1
Database :
MEDLINE
Journal :
Journal of nanoscience and nanotechnology
Publication Type :
Academic Journal
Accession number :
31383186
Full Text :
https://doi.org/10.1166/jnn.2020.17264