The remarkably improved hydrogen storage performance of MgH by the synergetic effect of an FeNi/rGO nanocomposite
Magnesium hydride (MgH 2 ) has been considered as a promising hydrogen storage material for buildings that are powered by hydrogen energy, but its practical application is hampered by poor kinetics and unstable thermodynamics. Herein, we describe a feasible method for preparing FeNi nanoparticles di...
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Veröffentlicht in: | Dalton transactions : an international journal of inorganic chemistry 2020-04, Vol.49 (13), p.4146-4154 |
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Hauptverfasser: | , , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Magnesium hydride (MgH
2
) has been considered as a promising hydrogen storage material for buildings that are powered by hydrogen energy, but its practical application is hampered by poor kinetics and unstable thermodynamics. Herein, we describe a feasible method for preparing FeNi nanoparticles dispersed on reduced graphene oxide nanosheets (FeNi/rGO), and we confirmed that excellent catalytic effects increased the hydrogen storage performance of MgH
2
. 5 wt% FeNi/rGO-modified MgH
2
began to release hydrogen at 230 °C and liberated 6.5 wt% H
2
within 10 min at 300 °C. As for the hydrogenation process, the dehydrogenated sample absorbed 5.4 wt% H
2
within 20 min at 125 °C under a hydrogen pressure of 32 bar. More importantly, a hydrogen capacity of 6.9 wt% was maintained after 50 cycles without compromising the kinetics during each cycle. A unique catalytic mechanism promoted synergetic effects between the
in situ
-formed Mg
2
Ni/Mg
2
NiH
4
, Fe, and rGO that efficiently promoted hydrogen dissociation and diffusion along the Mg/MgH
2
interface, anchored the catalyst, and prevented MgH
2
from aggregation and growth.
Synergetic effects between Mg
2
Ni/Mg
2
NiH
4
, Fe, and rGO contributed to the enhanced hydrogen storage performance of MgH
2
. |
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ISSN: | 1477-9226 1477-9234 |
DOI: | 10.1039/d0dt00230e |