Junying Tang, Qingshan Wang, Mingchu Ran, Xuping Wei, Mingyang Liu, Yuxuan Ma, Feiyi Zhou, Jiongran Lv, Li Xu, Guiqing Bai, Ruitang Guo, Xiao Zhang, Xiang Gao, Weiguo Pan
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.