Divyani Gupta, Jinshuo Zou, Anoja Kawsihan, Jodie A Yuwono, Zhaoliang Wu, Jun Yu, Yameng Fan, Sailin Liu, Jianfeng Mao, Zaiping Guo
Bifunctional electrocatalysts that simultaneously drive CO2 reduction (CO2RR) and oxygen evolution (OER) in neutral electrolytes are essential for aqueous Zn-CO2 batteries (AZCBs), but conventional designs prioritize CO2RR and are often incompatible with OER, resulting in low energy efficiency, poor reversibility, and rapid degradation of batteries. Here, we introduce a unified catalyst architecture integrating Cu and Ni single atoms with boron-, nitrogen-co-doped carbon (CuNi@BNC-T). Heteroatom co-doping stabilizes high single-atom loadings, enhances metal-support interactions, and suppresses carbon corrosion, while N-coordinated Cu+ and Ni3+ sites cooperatively boost CO2RR-OER, enabling ethanol formation and low-overpotential OER. This strategy achieves a 0.7 V voltage gap at 5 mA cm-2, 522 h cycling at 20 mA cm-2, and first ethanol production via AZCBs with energy efficiency of 88% (flow-cell). By elucidating previously unresolved degradation pathways, this work also correlates catalyst dynamics with battery failure, establishing design principles for durable bifunctional catalysts in aqueous Zn-CO2 systems.