化学
解吸
催化作用
密度泛函理论
选择性
红外光谱学
解耦(概率)
布朗斯特德-洛瑞酸碱理论
电解质
吸收光谱法
光谱学
星团(航天器)
无机化学
光化学
纳米颗粒
电化学
电解
反应性(心理学)
离子
吸收(声学)
环己烯
酒
组合化学
纳米片
苯乙烯
电子效应
铑
作者
Zhicheng Hu,Kai Wan,Jie Zhang,Guifa Long,Zhiyong Fu,Wenbo Liu,Zhenxing Liang
摘要
Abstract Selective electrooxidation of biomass-derived tetrahydrofurfuryl alcohol (THFA) to tetrahydrofuroic acid (THFCA) is a highly valuable pathway for sustainable chemical synthesis, which is fundamentally constrained by a paradoxical relationship: Facile C–H bond activation is coupled with sluggish desorption of the product. Herein, a partially oxidized cluster anchored on a TiO2 nanosheet (Ru–Ru(O) Cluster/TiO2) is developed to circumvent the contradiction through precise coordination engineering. X-ray absorption fine structure spectroscopy reveals unique Ru–Ru(O) clusters featuring concurrent Ru–Ru and Ru–O coordination, resulting in electronic properties distinct from both single-atom and nanoparticle regimes. Density functional theory calculations and in situ attenuated total reflection surface-enhanced infrared absorption spectroscopy reveal that the coordination-unsaturated Ru–O bonds and the moderate Ru 4d-band center facilitate facile THFA activation, while the electron-rich Ru centers modulated by Ru–Ru bonds promote the timely desorption of THFCA, thereby decoupling the contradiction between THFA reactivity and THFCA selectivity. As a result, the Ru–Ru(O) Cluster/TiO2 achieves a superior THFA-to-THFCA current density of 65 mA cm–2 with 85% THFCA selectivity at 1.9 V vs RHE. An anion exchange membrane flow electrolyzer equipped with the Ru–Ru(O) Cluster/TiO2 catalyst achieves a high current of 300 mA at 2.25 V and steadily operates for 75 h. Techno-economic analysis demonstrates that the scaled-up Ru–Ru(O) Cluster/TiO2 electrocatalytic process achieves a low total production cost of 6.79 USD kg–1, representing a 72% cost saving over conventional thermocatalytic routes and highlighting its potential for industrial application.
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