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Updated: Sep 17, 2025

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Modulating the local microenvironment over isolated nickel sites through first-shell coordination to regulate the
Yan Kong1,2, Xinmei Jia1,2, Xiaoyan Chai1
1College of Chemistry and Environmental Engineering, Shenzhen University, Shenzhen 518060, China.
Abstract:
Manipulating the local microenvironments of single-atom catalysts is crucial for the product selectivity of CO2 electroreduction. Although theoretical research suggests that modifying the coordination structure of isolated Ni sites can promote the reduction of CO2 to CH4, there is still no experimental evidence to date. Herein, by regulating the coordination shell of boron (B) surrounding the Ni central atom, we have achieved the transformation of the reduction product from CO to CH4. In situ techniques and density functional theory calculations reveal that B coordination in the second shell of the Ni-N-C motifs (Ni-N4-B/C) facilitates CO formation whereas incorporating B into the first shell (Ni-N3B1/C) significantly tunes the electronic structure of the Ni atoms, leading to electron delocalization, which enhances the *CO intermediate adsorption strength and makes CH4 the dominant product. This study marks the experimental realization of electrochemical CO2-to-CH4 conversion at isolated Ni sites and underscores the importance of local coordination environment regulation in steering the reaction pathways of single-atom catalysts.
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