Hydrogen storage in mechanically milled Mg-LaNi5 and MgH2-LaNi5 composites

Citation
G. Liang et al., Hydrogen storage in mechanically milled Mg-LaNi5 and MgH2-LaNi5 composites, J ALLOY COM, 297(1-2), 2000, pp. 261-265
Citations number
13
Categorie Soggetti
Apllied Physucs/Condensed Matter/Materiales Science
Journal title
JOURNAL OF ALLOYS AND COMPOUNDS
ISSN journal
09258388 → ACNP
Volume
297
Issue
1-2
Year of publication
2000
Pages
261 - 265
Database
ISI
SICI code
0925-8388(20000202)297:1-2<261:HSIMMM>2.0.ZU;2-S
Abstract
Magnesium and magnesium hydride were mechanically milled with LaNi5 to make a Mg-Ni-La ternary alloy for hydrogen storage. Mechanical milling of MgH2 + LaNi5 or milling of Mg + LaNi5 followed by a full hydrogenation leads to a composite of MgH2 + LaH3 + Mg2Ni. Upon hydrogen absorption/desorption cyc ling, a mixture of Mg + LaH3 + Mg2Ni phases is obtained in both cases, but with different powder sizes. The powder size is greatly reduced by using Mg H2 instead of Mg in the milling process. The reduction in powder size gives faster absorption kinetics, and slower desorption kinetics. Adding both Ni and La to Mg-based alloys produces a synergetic effect on the hydrogen abs orption/desorption. The ternary Mg-Ti-La alloy showed much better absorptio n and desorption kinetics than the binary alloys Mg-La and Mg-Ni. Lanthanum hydride has strong catalytic effects on absorption of Mg, but weak effects on desorption. Mg2Ni has better catalytic effect than lanthanum hydride at temperatures above 373 K. (C) 2000 Elsevier Science S.A. All rights reserv ed.