Issue 3, 2023

In situ morphology transformation and oxygen vacancy-engineering to upgrade Pd-catalyzed hydrogen production with unprecedented activity and durability

Abstract

Fabrication of low-cost and high-efficiency catalysts with excellent durability is essential to promote hydrogen production from the hydrolysis of ammonia borane (AB). Herein, we report a considerable performance improvement in hydrogen production from AB hydrolysis using Pd precursor reduction-induced morphology and vacancy engineering via in situ driving Co3O4 particles to nanosheets with abundant oxygen vacancies. The achieved Pd/Co3O4–SB catalyst exhibits excellent catalytic performances for room-temperature AB hydrolysis with recorded turnover frequencies of 781/12 674 min−1 in aqueous/alkali solutions. Most importantly, this catalyst shows unprecedented durability with highly maintained activity after the 20th cycle. The precursor reduction-induced morphology and oxygen vacancy modulation of the catalyst allows an abundance of catalytic active surfaces and promoted electron/mass transfer, facilitating the oxidative cleavage of the O–H bonds in attacked H2O, thereby, considerably boosting the hydrogen production through AB hydrolysis. This study presents a simple strategy to construct an effective and durable catalyst for hydrogen production from AB hydrolysis.

Graphical abstract: In situ morphology transformation and oxygen vacancy-engineering to upgrade Pd-catalyzed hydrogen production with unprecedented activity and durability

Supplementary files

Article information

Article type
Paper
Submitted
18 Aug 2022
Accepted
25 Nov 2022
First published
08 Dec 2022

Catal. Sci. Technol., 2023,13, 826-833

In situ morphology transformation and oxygen vacancy-engineering to upgrade Pd-catalyzed hydrogen production with unprecedented activity and durability

X. Zhang, Y. Zhu and X. Ma, Catal. Sci. Technol., 2023, 13, 826 DOI: 10.1039/D2CY01465C

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