一氧化氮
材料科学
化学工程
氧化物
化学
无机化学
纳米技术
催化作用
电催化剂
电极
纳米颗粒
硝酸
作者
Shanyuhan Jin,Daliang Xu,Peiwen Xu,Kangwei Yin,Jiaxin Du,Han Chen,Jinling Fan,Heng Liang,Zhongbiao Wu,Xuanhao Wu
标识
DOI:10.1038/s41467-026-75925-6
摘要
Electrochemical nitric oxide reduction (NORR) under industrially relevant dilute feeds is fundamentally limited by insufficient interfacial NO coverage and rapid loss of reactive intermediates. Here we introduce quantifiable nanoconfinement as a coverage-regulation strategy for NORR in the ppm regime. Hollow multishelled Cu2O nanoreactors are constructed as a model system, in which shell number defines confinement depth and progressively strengthens confinement by narrowing inter-shell cavities. Under a 1000 ppm NO feed, the three-shell catalyst achieves a Faradaic efficiency of 97.9% and a single-pass NO conversion of 97.3%, which is competitive with systems operating under NO-rich conditions. Finite-element simulations quantitatively show that multishell confinement nonlinearly amplifies intermediate enrichment, increasing local *H and *NH concentrations by over an order of magnitude relative to the single-shell structure while also enhancing local NO coverage. Coverage-dependent density functional theory and transition-state calculations reveal that the confinement-modulated coverage environment reshapes the NORR kinetic and thermodynamic landscape by rebalancing initial *NO hydrogenation and NH3 desorption, defining a favorable coverage window that balances intermediate activation and product release. These findings establish nanoconfinement-enabled coverage engineering for electrocatalysis under dilute feeds. Converting ppm-level NO into ammonia is challenging as reactants and intermediates are easily lost from catalyst surfaces. Here, the authors report quantifiable nanoconfinement as a coverage engineering strategy to nonlinearly enrich these species, improving ppm-level NO electroreduction activity.
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