催化作用
化学
选择性
合金
吸附
电解
无机化学
钾
氧化磷酸化
金属
电催化剂
电化学
贵金属
过渡金属
氢
化学工程
双功能
氧化还原
多相催化
电流密度
电解水
作者
Yunpeng Liu,Xiaolong Tao,Chuqiang Huang,Kai Zhao,Binglu Deng,Feng Peng
标识
DOI:10.1038/s41467-026-72465-x
摘要
Abstract Electro-reforming of biomass into value-added chemicals offers a sustainable approach for future energy developments. However, noble metal catalysts toward glucose electrooxidation suffer from deactivation, poor selectivity, and limited power density. Here, we present Au δ− -Cu δ+ sites in AuCu alloy that serve as stable and efficient catalyst for selective glucose electrooxidation to potassium gluconate at high current density. AuCu alloy ensures the co-adsorption of OH − on electron-deficient Cu δ+ sites and glucose on electron-rich Au δ− sites, stimulating the formation of oxidative *OH and intermediates. Selective adsorption of OH species on Cu δ+ sites also restrains the Au-OH formation and its subsequent oxidation to AuO x , thereby preventing catalyst deactivation. Especially, for glucose electrooxidation, Au 4 Cu 2 alloy delivers a high selectivity toward potassium gluconate (97.15%), along with a low potential of 0.74 V (versus reversible hydrogen electrode) to achieve industrial current density of 500 mA cm −2 . Furthermore, Au 4 Cu 2 alloy realizes a stable electrolysis with a potassium gluconate productivity of 9.46 mmol cm –2 h –1 and Faraday efficiency of 93.60% in the membrane-free flow electrolyzer.
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