Bi-Zr-Modulated CO Microenvironment Enables High-Rate CO Electroreduction.

ChemSusChem

Department of Applied Chemistry, Faculty of Engineering, Kyushu University, Motooka 744, Nishi-ku, Fukuoka, 819-0395, Japan.

Published: September 2025


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Article Abstract

Engineering the local chemical environment is an emerging strategy to enhance the performance of electrochemical CO reduction reactions (CORR). Bismuth-zirconium composite catalysts (Bi-Zr-KB, where KB = Ketjen Black) are developed to leverage Zr incorporation to modulate the local CO microenvironment in an alkaline flow-cell system. Among the catalysts synthesized with various Bi/Zr ratios, the Bi-Zr-KB sample with a Bi/Zr ratio of 2 demonstrated the highest performance, achieving a current density of -176 mA cm and a formate Faradaic efficiency of 88% at -0.6 V vs reversible hydrogen electrode; representing a 1.4-fold enhancement over the Bi-only catalyst. Material characterizations (X-ray photoelectron spectroscopy, scanning electron microscopy, energy-dispersive X-ray spectroscopy, X-ray absorption near edge structure) confirmed the reduction of Bi species to metallic Bi during electrolysis, while Zr remained chemically stable. Electrochemical impedance spectroscopy and in situ Raman spectroscopy revealed that Zr incorporation suppresses local pH rise (≈0.3 units lower), facilitating improved CO availability near active sites. Density functional theory calculations using Bi, BiO, and ZrBi models showed interfacial Bi-Zr phases enable uniform CO adsorption and enhanced charge transfer across surface orientation. These findings highlight Zr role in modulating catalyst microenvironment to overcome CO mass transport limitations and achieve high-rate CO conversion to formate.

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http://dx.doi.org/10.1002/cssc.202501024DOI Listing

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Bi-Zr-Modulated CO Microenvironment Enables High-Rate CO Electroreduction.

ChemSusChem

September 2025

Department of Applied Chemistry, Faculty of Engineering, Kyushu University, Motooka 744, Nishi-ku, Fukuoka, 819-0395, Japan.

Engineering the local chemical environment is an emerging strategy to enhance the performance of electrochemical CO reduction reactions (CORR). Bismuth-zirconium composite catalysts (Bi-Zr-KB, where KB = Ketjen Black) are developed to leverage Zr incorporation to modulate the local CO microenvironment in an alkaline flow-cell system. Among the catalysts synthesized with various Bi/Zr ratios, the Bi-Zr-KB sample with a Bi/Zr ratio of 2 demonstrated the highest performance, achieving a current density of -176 mA cm and a formate Faradaic efficiency of 88% at -0.

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