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◆ Langmuir : the ACS journal of surfaces and colloids2026-09-08

Tailoring Multivalent Nickel Sites via Mild Surface Reconstruction for Enhanced Nitrate Reduction.

Fei Lu, Lu Ding, Xinhui Liu, Tao Zhou, Aijuan Zhang, Min Zhou

原始摘要(英文原文)· Original abstract
Electrocatalytic nitrate reduction to ammonia (NO3RR) represents a sustainable route for green ammonia synthesis. However, its practical deployment is fundamentally compromised by a severe kinetic mismatch between the proton-supplying water dissociation step and the subsequent hydrogenation of nitrogenous intermediates, inevitably triggering intermediate accumulation and parasitic reactions. Herein, utilizing Ni(OH)2 as a model precatalyst, we demonstrate that operando electrochemical reconstruction tailored within a high-concentration nitrate environment (Ni(OH)2-N) effectively overcomes this critical bottleneck. Within this reconstructed catalyst, emergent high-valence Ni3+ sites efficiently cleave water to supply active protons (*H), while adjacent medium-valence Ni2+ sites concurrently anchor and activate nitrogenous intermediates. This spatially and electronically synergistic ensemble orchestrates kinetic matching across the tandem reaction pathways. Consequently, the optimal Ni(OH)2-N catalyst delivers an exceptional ammonia Faradaic efficiency of 95.5% and a yield rate of 0.82 mmol h-1 cm-2 at -0.2 V vs reversible hydrogen electrode, maintaining robust performance even at ampere-level current densities. Furthermore, a prototype aqueous Zn-NO3- battery assembled with this engineered cathode achieves a peak power density of 6.78 mW cm-2 alongside continuous and highly selective ammonia electrosynthesis. This work provides profound mechanistic insights into dynamic catalyst evolution, establishing a rational interfacial engineering paradigm for advanced tandem electrocatalysis.
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Tailoring Multivalent Nickel Sites via Mild Surface Reconstruction for Enhanced Nitrate Reduction. — 科研速览 Science Skim