Issue 2, 2024

Silver-decorated palladium on carbon catalyst for enhanced ammonium formate dehydrogenation

Abstract

Palladium (Pd)-based catalysts efficiently convert ammonium formate solution to hydrogen at low temperatures (<100 °C), but they tend to deactivate quickly during stability testing. This manuscript presents a systematic investigation into the catalytic properties of Pd–Ag bimetallic catalysts, focusing on their surface compositions and exploring the mechanisms behind the deactivation of Pd/Ag-based catalysts. This study reports a carbon-supported Pd–Ag bimetallic nanoparticle (NP) catalyst obtained through a galvanic replacement method, which showed enhanced formate dehydrogenation performance. The best catalyst, Pd3Ag10/ACA-G (Pd–Ag bimetallic NPs with a 3 : 10 mass ratio loaded on acid-washed activated carbon, prepared by the galvanic replacement method), presents the highest activity with a TOF of 5202 h−1 (∼2.6-fold of commercial Pd/C). The enhanced electron density of Pd–Ag bimetallic nanoparticles, coupled with the advantages of a smaller nanoparticle size, and the modulation of hydrogen adsorption energy through the Ag/Pd surface alloy on the Ag/Pd(111) facet, collectively resulted in experimentally higher turnover rates of hydrogen production. The changes on the catalyst surface, including surface Ag fraction decrease, NP size growth, and O-containing species (carboxylate, etc.) adsorption, gradually resulted in catalyst deactivation.

Graphical abstract: Silver-decorated palladium on carbon catalyst for enhanced ammonium formate dehydrogenation

Supplementary files

Article information

Article type
Paper
Submitted
28 Jul 2023
Accepted
07 Dec 2023
First published
08 Dec 2023

Catal. Sci. Technol., 2024,14, 449-463

Silver-decorated palladium on carbon catalyst for enhanced ammonium formate dehydrogenation

Z. Dong, A. Mukhtar, T. Ludwig, S. A. Akhade, W. Hu, J. Z. Hu, K. Grubel, M. Engelhard, B. C. Wood, T. Autrey and H. Lin, Catal. Sci. Technol., 2024, 14, 449 DOI: 10.1039/D3CY01057K

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