TY - JOUR
T1 - Space charge region induced self-evolution dehydrogenation of polymorphic magnesium-based hydrides
AU - Tang, Qinke
AU - Liu, Jiangchuan
AU - Li, Mengran
AU - Shi, Rui
AU - Zhu, Yunfeng
AU - Zhang, Yao
AU - Zhang, Jiguang
AU - Liu, Yana
AU - Wu, Yijin
AU - Li, Ling
AU - Hu, Xiaohui
AU - Li, Liquan
N1 - Publisher Copyright:
© 2023 Elsevier B.V.
PY - 2023/10/15
Y1 - 2023/10/15
N2 - In the field of metal hydride hydrogen storage, Mg2NiH4 is favoured for its high hydrogen storage capacity, fast hydrogenation/dehydrogenation kinetics, and unique electronic structure. The diversity of polymorphic Mg2NiH4 and complexity in phase transformation pose challenges on study of controllable preparation, structural analysis and hydrogen storage properties. Besides, one of the major factors plaguing metal hydride applications is air stability. In this work, an in-depth analysis of the Mg2NiH4 isomers was conducted by examining their thermodynamic, electrical, and microstructural differences. Differs from other metal hydrides, it is astonishing that the onset dehydrogenation temperature of Mg2NiH4 decreases after air exposure. This phenomenon, which was called self-evolution dehydrogenation of Mg2NiH4, occurred in both the high and low temperature phases of Mg2NiH4. The main components of the surface passivation layer resulting from air exposure of polymorphic Mg2NiH4 were clarified in this work. Self-evolution dehydrogenation can be attributed to the electronic structure variation of Ni/Ni(OH)2 and Ni/NiO in the passivation layer. Our findings provide some insights on phase composition determination of multi-metal hydrides. Furthermore, the findings also benefit for design of high-active and oxidation-resistant metal hydrides.
AB - In the field of metal hydride hydrogen storage, Mg2NiH4 is favoured for its high hydrogen storage capacity, fast hydrogenation/dehydrogenation kinetics, and unique electronic structure. The diversity of polymorphic Mg2NiH4 and complexity in phase transformation pose challenges on study of controllable preparation, structural analysis and hydrogen storage properties. Besides, one of the major factors plaguing metal hydride applications is air stability. In this work, an in-depth analysis of the Mg2NiH4 isomers was conducted by examining their thermodynamic, electrical, and microstructural differences. Differs from other metal hydrides, it is astonishing that the onset dehydrogenation temperature of Mg2NiH4 decreases after air exposure. This phenomenon, which was called self-evolution dehydrogenation of Mg2NiH4, occurred in both the high and low temperature phases of Mg2NiH4. The main components of the surface passivation layer resulting from air exposure of polymorphic Mg2NiH4 were clarified in this work. Self-evolution dehydrogenation can be attributed to the electronic structure variation of Ni/Ni(OH)2 and Ni/NiO in the passivation layer. Our findings provide some insights on phase composition determination of multi-metal hydrides. Furthermore, the findings also benefit for design of high-active and oxidation-resistant metal hydrides.
KW - Air stability
KW - Combustion synthesis-hydrogenation
KW - Hydrogen storage performance
KW - Mg-based hydrogen storage material
KW - Self-evolution
UR - http://www.scopus.com/inward/record.url?scp=85169437890&partnerID=8YFLogxK
U2 - 10.1016/j.cej.2023.145624
DO - 10.1016/j.cej.2023.145624
M3 - 文章
AN - SCOPUS:85169437890
SN - 1385-8947
VL - 474
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 145624
ER -