化学
价(化学)
离解(化学)
氢
一氧化氮
光化学
电子转移
氨
无机化学
激进的
吸附
氨生产
选择性
乙二醇
一氧化碳
氧气
硝酸
氧化物
产量(工程)
催化作用
过氧化氢
作者
Wei Wu,Keying Wu,Yi-Xiang Wang,C F Zhang,Yanjuan Sun,Jieyuan Li,Fan Dong
摘要
ABSTRACT The photocatalytic nitric oxide reduction reaction (NORR) to NH 3 offers a promising route for ammonia (NH 3 ) synthesis, addressing environmental issues and mitigating the carbon footprint associated with the energy‐intensive Haber‐Bosch process. However, conventional sluggish multi‐proton‐coupled electron transfer (PCET) and poor regulation of valence states at active sites hinder the efficiency of NORR. Herein, we propose a hydrogenation pathway driven by hydrogen radicals ( • H) utilizing ethylene glycol (EG) as a hydrogen donor, which effectively bypasses the limitations of the conventional PCET process. By precisely modulating the valence states of Pd cocatalysts, we construct synergistic Pd 0 /Pd 2+ dual active sites, where Pd 2+ sites facilitate the dissociation of C‐H bonds from EG to supply adsorbed H species (*H), which are subsequently activated into highly reactive • H by photogenerated electrons at Pd 0 sites. This synergistic effect of Pd 0 /Pd 2+ guarantees a steady flux of • H for deep NORR. Optimizing the Pd 0 /Pd 2+ ratio to unity (Pd 1.0 /TiO 2 ‐50) enabled a superior NH 3 yield rate of 31.61 ± 1.61 mmol∙g cat −1 ∙h −1 with high NO conversion (91.54% ± 1.82%) and NH 3 selectivity (90.14% ± 1.38%) in a single pass flow. Comprehensive in situ characterizations elucidate the causality between Pd valence states and radical generation, offering a new paradigm for designing and understanding the radical‐mediated chemistry.
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