纳米颗粒
钌
吸附
电化学
材料科学
共价键
氧化钌
氧化物
无机化学
共价有机骨架
亚硝酸盐
分子
法拉第效率
氢键
化学工程
光化学
催化作用
分解水
氨
氧化还原
可逆氢电极
从头算
氧化钛
化学
硝酸盐
金属有机骨架
氢
反应性(心理学)
作者
Y Li,Xin Zhao,Arsenii S. Portniagin,Yuxuan Wu,Desui Chen,Haochen Liu,Andrey L. Rogach
摘要
ABSTRACT Electrochemical nitrate reduction reaction (NO 3 RR) enables sustainable and decentralized ammonia production. Here, we demonstrate how oxygen‐deficient ruthenium oxide (RuO x ) nanoparticles confined within the imine‐based covalent organic framework (COF) produced from 1,3,5‐tris(4‐aminophenyl)benzene (TAPB) achieve highly efficient nitrate‐to‐ammonia conversion, delivering a high Faradaic efficiency of 99.2% at ‐1.1 V vs Ag/AgCl in a neutral electrolyte. Crystal structure, optical spectra, and electronic state analysis reveal the strong interaction between RuO x nanoparticles and TAPB‐COF. The confined nanoparticles change the interlayer spacing of TAPB‐COF, which in turn results in the high oxygen‐deficiency of RuO x . Investigations by in situ optical spectroscopies and ab initio molecular dynamics simulations reveal the occurrence of a repelling effect on water molecules at the surface of hydrophobic TAPB‐COF framework, which contributes to the prevalence of 2‐coordinated water at the surface of RuO x nanoparticles. This ensures a slow‐down proton transfer kinetics, leading to suppression of the hydrogen generation as an undesired competing process. The upshift of d‐band center and bridge‐site adsorption due to the high oxygen‐deficiency and the shortened Ru−Ru distance of the confined RuO x nanoparticles contribute to the strengthened bonding of *NO 2 and *NOH intermediates, which alleviates the nitrite production and accelerates the NO 3 RR process.
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