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◆ Angewandte Chemie International Edition2026-02-15· Electrosynthesis

Enzyme‐Inspired Molecular Design Unlocks Efficient and Selective Ammonia Electrosynthesis From Nitrate in Water

Santanu Ghorai, Sukanta Saha, Rathindranath Biswas, Abhishek Saini, Saktipada Barik, Somnath Guria, Ajay Kumar, Debendra Tewary, Arnab Dutta

原始摘要(英文原文)· Original abstract
ABSTRACT Ammonia is a vital feedstock and emerging carbon‐free energy carrier, yet its industrial synthesis via Haber–Bosch process remains highly energy‐ and carbon‐intensive. Electrochemical nitrate reduction (eNO 3 RR) offers a sustainable alternative; however, achieving high selectivity via this pathway necessitates efficient proton management at the catalytic site. Here, we report a family of cobaloxime complexes ( C1–C14 ) incorporating diverse outer coordination sphere (OCS) functionalities that act as enzyme‐inspired proton relays. These electrocatalysts enable complete 8e − /10H + conversion of nitrate () exclusively to ammonium () under near‐neutral aqueous conditions, with the adenosine‐functionalized derivative ( C13 ) achieving a rate of 22.5 mmol.cm −2 .hr −1 . mmol cat − 1 with ∼83% Faradaic efficiency. Mechanistic studies combining in situ Raman spectroscopy, isotopic labelling, 2D NMR, and buffer‐dependent kinetics reveal a stepwise nitrate‐to‐ammonia conversion via metal‐bound intermediates, directed by cooperative intra‐ and intermolecular proton relays. The catalysts operate homogeneously, without electrode deposition or molecular structure decomposition, during eNO 3 RR. These results establish OCS engineering as a powerful strategy for functionally mimicking enzymatic architectures in selective ammonia electrosynthesis via a sustainable eNO 3 RR pathway.
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Enzyme‐Inspired Molecular Design Unlocks Efficient and Selective Ammonia Electrosynthesis From Nitrate in Water — 科研速览 Science Skim