4.7 Article

Ultrafine RhNi Nanocatalysts Confined in Hollow Mesoporous Carbons for a Highly Efficient Hydrogen Production from Ammonia Borane

Journal

INORGANIC CHEMISTRY
Volume 60, Issue 9, Pages 6820-6828

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.inorgchem.1c00721

Keywords

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Funding

  1. National Natural Science Foundation of China [31870486]
  2. Natural Science Foundation of Jiangsu Province [BK20180723]
  3. National Natural Science Foundation of Shaanxi Province [2020JZ-03, 2021JLM-27]
  4. China Postdoctoral Science Foundation [2019M663690]
  5. Priority Academic Program Development of Jiangsu Higher Education Institutions

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This research developed highly active, durable, and selective nanocatalysts RhNi@NHMCs for fast hydrolysis of ammonia borane (AB) at room temperature with remarkable catalytic activity and low activation energy. The synergic electronic, functional, and support add-in advantages of RhNi@NHMCs were found to kinetically accelerate the hydrolysis reaction and promote the catalysis of ammonia borane effectively.
Ammonia borane (AB) has received growing research interest as one of the most promising hydrogen-storage carrier materials. However, fast dehydrogenation of AB is still limited by sluggish catalytic kinetics over current catalysts. Herein, highly uniform and ultrafine bimetallic RhNi alloy nanoclusters encapsulated within nitrogen-functionalized hollow mesoporous carbons (defined as RhNi@NHMCs) are developed as highly active, durable, and selective nanocatalysts for fast hydrolysis of AB under mild conditions. Remarkable activity with a high turnover frequency (TOF) of 1294 mol(H2) mol(Rh)(-1) min(-1) and low activation energy (E-a) of 18.6 kJ mol(-1) is observed at room temperature, surpassing the previous Rh-based catalysts. The detailed mechanism studies reveal that when catalyzed by RhNi@NHMCs, a covalently stable O-H bond by H2O first cleaves in electropositive H* and further attacks B-H bond of AB to stoichiometrically produce 3 equiv of H-2, whose catalytic kinetics is restricted by the oxidation cleavage of the O-H bond. Compositional and structural features of RhNi@NHMCs result in synergic electronic, functional, and support add-in advantages, kinetically accelerating the cleavage of the attacked H2O (O-H bond) and remarkably promoting the catalytic hydrolysis of AB accordingly. This present work represents a new and effective strategy for exploring high-performance supported metal-based alloy nanoclusters for (electro)catalysis.

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