Regulating Hydroxyl Species over Pd-based Nanowires towards Enhanced Direct Electrooxidation of Ethylene to Ethylene Glycol

Abstract

Electro-catalytic ethylene oxidation presents a promising avenue for selective ethylene glycol production, circumventing the drawbacks of traditional harsh catalytic methods. Despite challenges like low selectivity and current density, innovative catalyst designs have emerged. This study introduces a novel PdAuBi alloy nanowires synthesized via a simple wet chemical route. The Au atoms doping enhances catalytic activity by reducing hydroxyl binding energy while Bi atoms increase hydroxyl coverage, promoting efficient ethylene oxidation and EG production. Remarkably, the PdAuBi nanowires exhibit Faraday efficiency exceeding 72% with liquid products selectivity of 87%, surpassing commercial Pd/C catalysts. In-situ electrochemical infrared spectroscopy further elucidates the transformation process, emphasizing the role of hydroxyl regulation in enhancing ethylene to ethylene glycol conversion.

Supplementary files

Article information

Article type
Paper
Submitted
17 Aug 2025
Accepted
21 Sep 2025
First published
24 Sep 2025

Dalton Trans., 2025, Accepted Manuscript

Regulating Hydroxyl Species over Pd-based Nanowires towards Enhanced Direct Electrooxidation of Ethylene to Ethylene Glycol

S. Hu, C. Li, H. Jin, D. Sun, Y. Wang, J. Cao, Q. Chen and Y. Zhu, Dalton Trans., 2025, Accepted Manuscript , DOI: 10.1039/D5DT01958C

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