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◆ Angewandte Chemie2026-04-02· Faraday efficiency

Dynamic Cobalt Phase Transition Enables Self‐Adaptive Electrocatalytic Nitrate‐to‐Ammonia Conversion in Neutral Media

Li Xu, Haitong Li, Xiang Geng, Chang Liu, Zhisheng Li, Yufei Yang, Yang Wang

原始摘要(英文原文)· Original abstract
ABSTRACT Electrocatalytic nitrate (NO 3 − ) reduction to ammonia (NH 3 ) represents a sustainable pathway for resource recovery and wastewater treatment. However, its application in neutral media typical of real wastewater sources is constrained by weak NO 3 − adsorption and proton scarcity, which necessitate high overpotentials that promote the competing hydrogen evolution reaction (HER) and lower selectivity. Here, we overcome this dilemma through a dynamic phase‐transition strategy using a defect‐engineered Co 3 O 4‐x catalyst, which achieves ∼100% Faradaic efficiency with a high NH 3 yield rate of 11.6 mg h −1 cm −2 at −0.5 V versus RHE in neutral electrolyte. Operando spectroscopy and theoretical calculations reveal an electrochemically reversible phase transition, wherein cathodic potential reduces Co 3+ to Co 2+ , forming a Co(OH) 2 intermediate that spontaneously reverts upon potential removal. This dynamic restructuring spatiotemporally decouples NO 3 − adsorption and hydrogenation: the Co 3+ ‐rich phase captures NO 3 − , while the transient Co(OH) 2 activates water to supply active hydrogen for hydrogenation steps. This self‐adaptive process suppresses HER and ensures remarkable stability during 300 h of operation. The catalyst further demonstrates robust performance across diverse real wastewaters without supporting electrolytes and enables efficient NH 3 recovery. This work establishes dynamic phase engineering as a transformative design paradigm for adaptive electrocatalysts, paving the way for practical sustainable nitrogen management.
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Dynamic Cobalt Phase Transition Enables Self‐Adaptive Electrocatalytic Nitrate‐to‐Ammonia Conversion in Neutral Media — 科研速览 Science Skim