Unlocking efficient electrocatalytic oxidation of fatty alcohol via self-promoted hydrophobic interfacial microenvironmentOA
Electrocatalysis offers a promising solution for the oxidative valorization of fatty alcohols,showcasing reaction mildness and sustainability.However,the intrinsically low solubility of fatty alcohols in aqueous electrolytes presents severe mass transfer barriers,thus impeding the efficiency of electrocatalytic oxidation processes.In this study,we develop an electrolyte engineering strategy that eliminates the need for exogenous additives.By utilizing amphiphilic fatty acid anions,we construct a“self-promoted”hydrophobic interfacial microenvironment.This design significantly enhances the oxidation rate of fatty alcohols on gold electrocatalysts while simultaneously ensuring high-purity products.Specifically,the addition of potassium octanoate(KC8)into 1 mol L^(-1)KOH results in a 3-to 4-fold increase in terms of current density and productivity for octanol oxidation,underscoring substantial practical potential.Mechanistic studies reveal that KC8 modifies the electrical double layer structure,effectively repelling interfacial water and disrupting the hydrogen bond network,thereby enhancing interfacial hydrophobicity.The hydrophobic microenvironment subsequently promotes the enrichment of octanol reactants at the interface,leading to improved adsorption coverage on the electrode.The“self-promoted”strategy established in this work represents a cost-effective method for interfacial microenvironment modulation,offering inspiration for the development of efficient organic electrocatalytic processes involving hydrophobic reactants.
Ruiqi Du;Shiyan Wang;Yuhan Sun;Zemao Chen;Kaizheng Zhang;Binhang Yan;Zheng Liu;Yi Cheng
Department of Chemical Engineering,Tsinghua University,Beijing,100084,ChinaDepartment of Chemical Engineering,Tsinghua University,Beijing,100084,ChinaDepartment of Chemical Engineering,Tsinghua University,Beijing,100084,ChinaDepartment of Chemical Engineering,Tsinghua University,Beijing,100084,ChinaDepartment of Chemical Engineering,Tsinghua University,Beijing,100084,ChinaDepartment of Chemical Engineering,Tsinghua University,Beijing,100084,ChinaDepartment of Chemical Engineering,Tsinghua University,Beijing,100084,ChinaDepartment of Chemical Engineering,Tsinghua University,Beijing,100084,China
化学化工
Electrocatalytic oxidationFatty alcoholElectrolyte engineeringInterfacial microenvironment
《Green Energy & Environment》 2026 (5)
P.1385-1392,8
Financial supports from National Natural Science Foundation(No.22278235 and No.21991104)International Joint Mission On Climate Change and Carbon Neutrality are acknowledged.
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