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◆ Angewandte Chemie International Edition2026-01-09· Wastewater

Paired‐Cell Ammonia over Black CoWO <sub>4</sub> via Electrocatalysis–Acidification Cascade from Wastewater at Ampere‐Level Current Density

Qingna Gong, Yongbiao Mu, Han Zhao, Wen‐Da Zhang, X. F. Li, Ming Chen, Fang Fang Song, Jiangyong Liu, Yonggui Zhao, Heng Zhao, Jing Wang, Lin Zeng, Xiaodong Yan, Zhangxing Chen

原始摘要(英文原文)· Original abstract
Abstract Electrochemical nitrate reduction to ammonia (NO 3 RR) offers a sustainable alternative to the energy‐intensive Haber–Bosch process. However, its practical implementation is limited by the sluggish and energy‐demanding oxygen evolution reaction at the anode. Herein, we report a strategically designed paired‐electrolysis system coupling NO 3 RR with the urea oxidation reaction (UOR), followed by chemical acidification, to establish an economical route of bipolar ammonia (NH 3 ) production, using a black CoWO 4 (B‐CoWO 4 ) with abundant oxygen vacancies (OVs) as the electrocatalyst. B‐CoWO 4 shows a record‐breaking performance with a current density of ∼1.25 A cm −2 at an ultra‐low potential of 0 V versus reversible hydrogen electrode. Combined spectroscopic and electrochemical analyses reveal a “fill‐restore” cycle of OVs during NO 3 RR: oxygen from NO 3 − incorporates into the OVs, which are subsequently restored after the formation of NH 3 . Theoretical calculations demonstrate that the OVs modify the electronic structure of the catalyst and facilitate the formation of key intermediate (NO 3 H*). Importantly, in the coupled NO 3 RR||UOR flow‐cell system, B‐CoWO 4 delivers an apparent bipolar NH 3 Faradaic efficiency of 173.12% and a production rate of 9.43 mmol h −1 cm −2 . This integrated strategy boosts overall energy efficiency and enables simultaneous valorization of nitrate‐contaminated water and urea‐rich wastewater streams.
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Paired‐Cell Ammonia over Black CoWO <sub>4</sub> via Electrocatalysis–Acidification Cascade from Wastewater at Ampere‐Level Current Density — 科研速览 Science Skim