Superior reversible hydrogen storage in eutectic LiBH4–KBH4 system via Ni–based catalysts synergized with graphene
Shanqing Qu, Yaxiong Yang, Mingxia Gao, Zhenglong Li, Wenping Sun, Chu Liang, Xin Zhang, Xin Zhang 等 13 位
Zhejiang University Xi'an Technological University Zhejiang University of Technology
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Light metal borohydrides are promising candidates for solid–state hydrogen storage due to their high hydrogen storage capacities; however, the reversibility and kinetics of de/hydrogenation still require significant improvement. The present work focuses on the improvement of the hydrogen storage properties of the eutectic borohydride system of LiBH 4 –KBH 4 (Li/KBH 4 ). A layered composite of graphene supported with ultrafine Ni 3 B nanoparticles (Ni 3 B/G) is designed and synthesized, which acts as catalyst and confinement carrier for Li/KBH 4 . Assisted with a heating of the mixture of Li/KBH 4 and Ni 3 B/G to 110 °C in the molten state of Li/KBH 4 , an interlayer structure of graphene dispersed with Ni 3 B nanoparticles and sheet–like Li/KBH 4 is constructed. The graphene effectively disperses Ni 3 B nanoparticles and confines the Li/KBH 4 in its interlayers. The confinement of Li/KBH 4 and the catalysis of Ni 3 B nanoparticles, assisted with the high thermal conductivity of graphene, contribute synergistically the hydrogen storage of Li/KBH 4 . The main dehydrogenation peak temperature of the system is lowered to 278 °C. The system can release 8.5 wt% H 2 within 30 min at 350 °C. The capacity retention achieves 81.2% after 50 cycles. DFT theoretical analysis shows that there is strong charge transfer interaction between Ni 3 B and LiBH 4 /KBH 4 , which destabilizes the [BH 4 ] – structure and promotes the dehydrogenation. This work provides a new approach for the design of new structural LiBH 4 –based eutectic system with high capacity, low dehydrogenation temperature, high reversibility and long cycling life.
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材料 / 化学Hydrogen Storage and Materials
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