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3DOM Perovskite Enabled Interfacial Microenvironment Regulation With Accelerated Complete Reconstruction to
Bowen Li1, Xiaofeng Xue1, Shaohuan Hong2
1State Key Laboratory of Mechanics and Control for Mechanical Structures, Key Laboratory for Intelligent Nano Materials and Devices of the Ministry of Education, Institute for Frontier Science, Nanjing University of Aeronautics and Astronautics, Nanjing, China.
Abstract:
Electrochemical CO2 reduction reaction (CO2RR) offers a compelling pathway to convert carbon emissions into value-added chemicals, yet achieving high activity, selectivity, and durability under industrial conditions remains challenging. Though copper oxides could uniquely promote C2+ electrosynthesis, their performance is dictated by dynamic oxide reconstruction, which is strongly governed by the interfacial microenvironment. Here, we report direct interfacial microenvironment regulation by constructing a 3D ordered macroporous (3DOM) architecture from layered perovskite La2CuO4. The 3DOM architecture simultaneously strengthens the surface electric field, elevates local pH, and accelerates mass transport at the interface, driving accelerated and complete reconstruction of La2CuO4 into dendritic grain-boundary-rich nano-copper. Consequently, 3DOM-La2CuO4 delivers a high C2+ partial current density of 585 mA cm-2 in a flow cell, outperforming bulk counterpart and most reported Cu-oxide-based catalysts. In a membrane-electrode assembly, stable operation is sustained for ∼ 200 h at 600 mA cm-2 with high C2+ selectivity. Combined experimental and theoretical analysis identify undercoordinated, compressively strained Cu atoms at grain boundaries as the intrinsic active sites for C2+ formation, by facilitating *COH formation, stabilizing *OCCOH intermediate, and suppressing the competing hydrogen production. This work establishes electrode-architecture-driven microenvironment engineering as a general strategy for directing oxide reconstruction and designing high-performance CO2RR catalysts.
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