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Synergistic effect of Pd single atoms and clusters on the de/re-hydrogenation performance of MgH2.

Authors :
Xu, Nuo
Zhou, Haoran
Zhang, Mingqiang
Ye, Yuchuan
Wang, Kaiwen
Zhou, Yingtang
Zhu, Yunfeng
Zhang, Yao
Source :
Journal of Materials Science & Technology; Aug2024, Vol. 191, p49-62, 14p
Publication Year :
2024

Abstract

• Highly catalytic palladium metallene was prepared. • Initial dehydrogenation temperature of MgH 2 -Pd metallene was reduced by 141 K. • Synergistic effects of Pd single atoms and clusters were observed. Hydrogen storage plays a pivotal role in the hydrogen industry, yet its current status presents a bottleneck. Diverse strategies have emerged in recent years to address this challenge. MgH 2 has stood out as a promising solid-state hydrogen storage material due to its impressive gravimetric and volumetric hydrogen density, but its practical application is hampered by elevated thermal stability and sluggish kinetics. In this study, we introduce a solution by synthesizing Pd metallene through a one-pot solvothermal method, revealing a distinctive highly curved lamellar structure with a thickness of around 1.6 nm. Incorporating this Pd metallene into MgH 2 results in a composite system wherein the starting dehydrogenation temperature is significantly lowered to 439 K and complete dehydrogenation occurs at 583 K, releasing 6.14 wt.% hydrogen. The activation energy of dehydrogenation for MgH 2 was reduced from 170.4 kJ mol<superscript>–1</superscript> to 79.85 kJ mol<superscript>–1</superscript> after Pd metallene decoration. The enthalpy of dehydrogenation of the MgH 2 –10 wt.% Pd sample was calculated to be 73 kJ mol<superscript>–1</superscript> H 2 <superscript>–1</superscript> and decreased by 4.4 kJ mol<superscript>–1</superscript> H 2 <superscript>–1</superscript> from that of dehydrogenation of pure MgH 2 (77.4 kJ mol<superscript>–1</superscript> H 2 <superscript>–1</superscript>). Theoretical calculations show that the average formation energy and average adsorption energy of hydrogen vacancies can be significantly reduced in the presence of both Pd clusters and Pd single atoms on the surface of MgH 2 /Mg, respectively. It suggests that the synergistic effect of in situ formed Pd single atoms and clusters significantly improves the hydrogenation and dehydrogenation kinetics. The identified active sites in this study hold potential as references for forthcoming multi-sized active site catalysts, underscoring a significant advancement toward resolving hydrogen storage limitations. [Display omitted] [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10050302
Volume :
191
Database :
Supplemental Index
Journal :
Journal of Materials Science & Technology
Publication Type :
Periodical
Accession number :
177602164
Full Text :
https://doi.org/10.1016/j.jmst.2024.01.009