4.7 Article

Pt@Ni2P/C3N4 for charge acceleration to promote hydrogen evolution from ammonia-borane

期刊

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
卷 48, 期 65, 页码 25423-25437

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2023.03.218

关键词

Ammonia borane; Hydrolysis; Catalysis; Ni2P; Pt@Ni2P; Hydrogen

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Incorporating g-C3N4 with transition metal phosphides has the potential to create a low-cost and robust co-catalyst for hydrogen evolution. The ammonia borane hydrolysis method efficiently releases H2 in the presence of a catalyst under ambient conditions. A Ni2P/C3N4 catalyst is synthesized using a hydrothermal method and low-temperature phosphidation, and optimization reveals that the catalyst with 6.5% Ni content performs the best for H2 release. Furthermore, loading 2% Pt nanoparticles over Ni2P/C3N4 improves activity 5.7-fold and enhances charge transfer.
Incorporating g-C3N4 with transition metal phosphides is emerging as a low-cost and robust co-catalyst for hydrogen evolution. The ammonia borane hydrolysis is an efficient method to release H2 at ambient conditions in the presence of a catalyst. An efficient and cheap catalyst is needed for practical application to achieve this benchmark. For this purpose, a catalyst Ni2P/C3N4 is synthesized by hydrothermal method and low -temperature phosphidation. The optimization reveals that the Ni2P/C3N4 with 6.5% Ni contents shows the best performance for H2 release. Furthermore, 2% Pt nanoparticles loading over Ni2P/C3N4 boosts the charge transfer and improves activity 5.7-fold compared to Ni2P/C3N4, and the Pt-loaded catalyst is depicted as Pt@Ni2P/C3N4. The reaction kinetics reveals that the hydrogen evolution rate accelerates by increasing the amount of Pt@Ni2P/ C3N4 and AB concentration, and the loading of Pt nanoparticles loaded over Ni2P/C3N4 re-duces the activation energy significantly. Moreover, the ionic interaction between Pt and Ni2P/C3N4 generates Pta+ and (Ni2P/C3N4)a- active sites which facilitates B-H cleavage and O-H bonds of ammonia borane and water, respectively. Incorporating transition metals phosphide and noble metals supported over g-C3N4 paves the pathway toward the efficient H2 evolution from ammonia borane, bringing cost-effective modifications to synthesize constructive catalysts.& COPY; 2023 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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