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Electrochemically and Bioelectrochemically Induced Ammonium Recovery
Published on: January 22, 2015
Self-Sustaining Dynamic Alkaline Microenvironment-Mediated Efficient Nitrate Electroreduction to Ammonia on MnFeOx in
Xinmei Jia1, Yan Kong1, Da Wan2
1Department of Chemical Physics, University of Science and Technology of China, Hefei, Anhui, People's Republic of China.
None:
Electrocatalytic nitrate reduction (NO3RR) that utilizing renewable electricity to convert nitrate pollutants in wastewater, represents a promising route for sustainable ammonia synthesis, yet its efficiency in neutral media is severely limited by sluggish kinetics and intense competition from hydrogen evolution reaction (HER). Herein, we introduce a "self-sustaining alkaline local microenvironment" strategy enabled by a MnFe dual-site oxide that concurrently serves as a structural scaffold and catalytic mediator, in which inactive FeOh sites in FeOx are selectively substituted by Mn while active FeTd sites are retained. Fe sites in 1D MnFeOx activate NO3 - and dynamically capture OH- to form FeOOH, establishing a localized alkaline microenvironment around the active sites at electrode-electrolyte interface that effectively suppresses HER. Concurrently, Mn sites stabilize the high-valent Fe species and continuously split interfacial H2O into OH- and H*, ensuring the robust persistence of the alkaline microenvironment. The resulting 1D MnFeOx catalyst delivers an NH3 Faradaic efficiency of 95.9% (12.3 mg h-1 cm-2) in neutral media and operates stably for over 20 h without degradation. By advancing local pH regulation from external intervention to intelligent self-regulation, this work offers a new insight in adaptive electrocatalyst design and regulating the interfacial microenvironment beyond NO3RR.
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