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Nature-Inspired Design of Molybdenum-Selenium Dual-Single-Atom Electrocatalysts for CO 2 Reduction.

Kaian SunKe YuJinjie FangZewen ZhuangXin TanYue WuLingyou ZengZhongbin ZhuangYuan PanChen Chen
Published in: Advanced materials (Deerfield Beach, Fla.) (2022)
Electrochemical CO 2 reduction (ECR) is becoming an increasingly important technology for achieving carbon neutrality. Inspired by the structure of naturally occurring Mo-dependent enzymes capable of activating CO 2 , a heteronuclear Mo-Se dual-single-atom electrocatalyst (MoSA-SeSA) for ECR into CO with a Faradaic efficiency of above 90% over a broad potential window from -0.4 to -1.0 V versus reversible hydrogen electrode is demonstrated here. Both operando characterization and theoretical simulation results verify that MoSA acts as central atoms that directly interact with the ECR feedstock and intermediates, whereas the SeSA adjacent to MoSA modulates the electronic structure of MoSA through long-range electron delocalization for inhibiting MoSA poisoning caused by strong CO adsorption. In addition, the SeSAs far from MoSA help suppress the competing hydrogen evolution side reaction and accelerate the CO 2 transport by repelling H 2 O. This work provides new insight into the precise regulation and in-depth understanding of multisite synergistic catalysis at the atomic scale.
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