尿素
催化作用
化学
普鲁士蓝
氧化还原
原位
组合化学
无机化学
化学工程
多相催化
反应条件
废水
氧化还原
作者
Xia Zhang,Linfeng Li,Solmaz Feizpoor,Xuefei Xu,Yuxiao Liu,Muhammad Humayun,Dongyang Li,Xiaomin Xu,Haiqing Zhou,Yuanjie Pang,Kaifu Huo,Zong-ping Shao,Chundong Wang
出处
期刊:eScience
[Elsevier BV]
日期:2026-08-01
卷期号:: 100641-100641
标识
DOI:10.1016/j.esci.2026.100641
摘要
Intermediate-valence Ni–O species are implicated in nickel-catalyzed urea oxidation but may continuously evolve toward more highly oxidized Ni–O states at elevated potentials, complicating mechanistic assignment and compromising reaction selectivity. We report a dynamically modulated strategy to construct a unique d–p interface (–O–Ni–N≡C–) between Prussian blue and LDH. DFT calculations and in situ characterizations indicate that proton/electron transfer from urea, together with the redox-responsive interfacial charge-buffering behavior of the –N≡C– units, maintains an intermediate Ni–O coordination/oxidation-state regime associated with Ni(OH)O-related species while suppressing further overoxidation toward NiOO-related states. This regulated Ni–O environment enables t-NFPBA@LDH to deliver high urea oxidation reaction (UOR) activity while significantly suppressing the formation of CNO - by-products. The catalyst demonstrates immense potential for urea fuel cells and wastewater degradation. This stabilization strategy offers a new paradigm for designing high-performance UOR catalysts.
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