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Published on: December 6, 2021
Unveiling a Surface-Bulk Electronic Dichotomy in Co3O4/ZnO Heterojunctions for Enhanced Electrocatalytic
Jing Geng1,2, Yaocai Wu1,2, Dong Wu1,2
1School of Materials and Chemical Engineering, Anhui Province International Research Center on Advanced Building Materials, Anhui Jianzhu University, Hefei, China.
Abstract:
Constructing heterojunctions is a powerful strategy to optimize electrocatalysts, yet interfacial electronic reconstruction is often oversimplified as unidirectional charge transfer. Herein, we report Co3O4/ZnO heterostructures that exhibit a unique surface-bulk electronic dichotomy for nitrate reduction to ammonia. Surface-sensitive XPS reveals electron deficiency at Co sites, while bulk-sensitive XANES and DFT calculations demonstrate net electron accumulation within the Co3O4 lattice. This distinctive feature, arising from interfacial Co─O─Zn bonding and enriched oxygen vacancies, establishes a "surface-capture and bulk-activation" motif in which electron-deficient surface Co sites enhance nitrate adsorption, while electron-enriched bulk Co centers optimize *H and *NOH adsorption, thereby lowering the rate-determining step barrier to 0.41 eV. The optimized Co3O4/ZnO catalyst achieves a Faradaic efficiency of 98.36% at -0.25 V (vs. RHE) and a NH3 yield of 9.35 mg h-1 cm-2. Furthermore, a membrane electrode assembly flow cell integrating glycerol oxidation at the anode delivers a current density of 600 mA·cm-2 at 2.5 V with stable operation over 40 h. This work unveils surface-bulk electronic decoupling as a new paradigm for heterojunction design, demonstrating both exceptional catalytic performance and practical application potential for energy-efficient ammonia electrosynthesis.
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