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Low-coordinated CuNi dual-atom catalyst for efficient flue gas CO2-to-C2H6 photoreduction
Junying Tang1,2, Qingshan Wang1,2, Mingchu Ran3
1College of Energy and Mechanical Engineering, Shanghai University of Electric Power, Shanghai, China.
Abstract:
Efficient photoreduction of flue gas CO2 to high-value C2 products is challenging due to low CO2 concentrations, sluggish kinetics, and susceptibility to catalyst poisoning. To tackle this, CuNi/PCN photocatalysts with low-coordinated N3-Ni-Cu-N2 dual-atom active sites were synthesized by in-situ thermal polymerization method. The optimized catalyst drives CO2 photoreduction, with C2H6 formed as the major product at a rate of 254.3 μmol h-1 g-1 alongside CO and CH4. Notably, it retains ~50% yield with ~63% electron selectivity of C2H6 under 15% diluted CO2 and exhibits robust anti-poisoning capability and stability in complex flue gas. Integrated studies reveal that low coordinated CuNi dual-atom sites synergistically modulates active site electronics, enhancing CO2 adsorption and lowering barriers for C-C coupling to form C2H6. The formed Cu-Ni bonds further reinforce the catalyst's structural and photocatalytic stability. Overall, this work offers a promising strategy for efficient solar C2 production from industrial exhaust gases.