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◆ Angewandte Chemie International Edition2026-03-05· Catalysis

Surface Dynamic Redox Modulation of CuFe Achieving Near‐Unity Selectivity in Solar‐Integrated Nitrate‐to‐Ammonia Conversion

Wenxing Chen, Peng Guo, Shoufu Cao, Wenjing Huang, Xiaoqing Lu, Pengan Zhang, Youzi Zhang, Y. Wang, Ruiqing Zou, Sibi Liu, Xuanhua Li

原始摘要(英文原文)· Original abstract
ABSTRACT Electrocatalytic nitrate reduction (NO 3 − RR) provides a sustainable pathway for NH 3 production under ambient conditions. Although operation in neutral media is more practically relevant, the reaction generally suffers from sluggish kinetics and unfavorable hydrogenation steps, which collectively limit NH 3 selectivity. Here, we develop a graphene‐encapsulated CuFe alloy catalyst (CuFe‐G) that enables highly efficient NO 3 − RR via a dynamically generated CuFe δ+ surface active layer. The synergistic alloy interface drives the spontaneous conversion of NO 3 − to NO 2 − , while in Situ surface redox dynamics create an active CuFe δ+ layer that optimizes *NO adsorption and accelerates hydrogenation kinetics. In parallel, encapsulation of the dynamic CuFe δ+ species within multilayer graphene constructs a mechanically robust and highly conductive interface that stabilizes the active sites and facilitates rapid charge transport. As a result, CuFe‐G delivers a peak NH 3 Faradaic efficiency of 99.63% at −1.0 V vs. RHE, together with an NH 3 yield rate of 8.03 mg h −1 mg cat −1 . When integrated into a CuFe‐G‖RuO 2 electrolyzer, the system further achieves a current density of 400 mA cm −2 at 2.6 V and maintains a solar‐to‐ammonia efficiency of 4.1% under fluctuating illumination. This work therefore establishes a dynamically redox‐regulated catalytic platform for sustainable, solar‐driven nitrate‐to‐ammonia conversion.
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Surface Dynamic Redox Modulation of CuFe Achieving Near‐Unity Selectivity in Solar‐Integrated Nitrate‐to‐Ammonia Conversion — 科研速览 Science Skim