Single Ga-Atom Stabilized Cu+-Cu0 Interfacial Sites for Efficient Air Plasma-Derived Ammonia Electrosynthesis
Jinxuan Wu1, Yong Xu1, Jinyang Zhang2
1School of Chemistry and Chemical Engineering, State Key Laboratory of Bio-based Fiber Materials, Zhejiang Sci-Tech University, Hangzhou, Zhejiang, China.
None:
Electrocatalytic NOx reduction to ammonia (NOxRR) offers a sustainable route for decentralized NH3 synthesis, however, its practical implementation is impeded by sluggish hydrogenation kinetics and the instability of active species. Herein, we develop a Ga single-atom decorated CuOx/Cu (GaSA-CuOx/Cu) catalyst featuring a strongly coupled Ga-O-Cu coordination structure. The introduction of highly electrophilic Ga3+ modulates the electronic structure of Cu via p-d interactions, downshifting the Cu d-band center to weaken excessive intermediate binding, while stabilizing Cu+ species to form highly active Cu+-Cu0 interfacial sites. Meanwhile, Ga sites promote active hydrogen supply and accelerate hydrogenation kinetics on adjacent Cu centers. Benefiting from these synergistic effects, the optimized GaSA-CuOx/Cu achieves a remarkable NH3 Faradaic efficiency (FE) of 96.21% at -0.4 V versus RHE and high durability at -0.5 A cm-2. Moreover, a Zn-NO2 -/ethanol battery delivers a peak power density of 17.47 mW cm-2 with improved charging efficiency, while a plasma-assisted hybrid electrolyzer achieves >95% FEs for both NH3 and formate at -400 mA cm-2 and operates stably for 200 h at 0.5 A cm-2, demonstrating its strong applicability in integrated energy-chemical conversion systems.
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