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首页> 外文期刊>Green chemistry >Electrocatalytic oxidation of 5-hydroxymethylfurfural to 2,5-furandicarboxylic acid on supported Au and Pd bimetallic nanoparticles
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Electrocatalytic oxidation of 5-hydroxymethylfurfural to 2,5-furandicarboxylic acid on supported Au and Pd bimetallic nanoparticles

机译:负载型Au和Pd双金属纳米粒子上5-羟甲基糠醛电催化氧化为2,5-呋喃二甲酸

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This work explores the potential-dependent electrocatalytic oxidation of 5-hydroxymethylfurfural (HMF) in alkaline media oyer supported Au and Pd nanoparticles and demonstrates the synergistic effects of bimetallic Pd-Au catalysts for the selective formation of 2,5-furandicarboxylic acid (FDCA). Results from electrolysis product analysis at various electrode potentials, along with cyclic voltammetry of HMF and its oxidation intermediates, revealed the unique catalytic properties of Pd and Au for competitive oxidation of alcohol and aldehyde side-groups present in HMF. Aldehyde oxidation was greatly favored over alcohol oxidation on the Au/C catalyst, which was very active for HMF oxidation to 5-hydroxymethyl-2-furan-carboxylic acid (HFCA), however high electrode potentials were required for further oxidation of the alcohol group to FDCA. HMF oxidation on Pd/C followed two competitive routes to FDCA and the pathway was dependent on the electrode potential. Oxidation of aldehyde groups occurred much slower on Pd/C than on Au/C at low potentials, but was greatly enhanced at increased potentials or by alloying with Au. It was found that Pd-Au bimetallic catalysts achieved deeply oxidized products (FFCA and FDCA) at lower potentials than monometallic catalysts and the product distribution was dependent on the electrode potential and surface alloy composition. Bimetallic catalysts with 2:1 and 1:2 Pd-Au molar ratios (Pd2Au1/C and Pd1Au2/C) exhibited advantages of both single components with facile alcohol and aldehyde group oxidation, resulting in greatly improved HMF conversion rate and selectivity to fully oxidized FDCA.
机译:这项工作探索了碱性介质中5-羟基甲基糠醛(HMF)在负载的Au和Pd纳米颗粒上的电势依赖性电催化氧化,并证明了双金属Pd-Au催化剂对选择性形成2,5-呋喃二甲酸(FDCA)的协同作用。 。在各种电极电位下进行电解产物分析的结果,以及HMF及其氧化中间体的循环伏安法,揭示了Pd和Au对HMF中存在的醇和醛侧基竞争氧化的独特催化性能。在Au / C催化剂上,醛的氧化优于醇的氧化,对于HMF氧化成5-羟甲基-2-呋喃羧酸(HFCA)的活性非常高,但是进一步的醇基氧化需要高电势到FDCA。 Pd / C上的HMF氧化遵循两条竞争途径进入FDCA,且该途径取决于电极电势。在低电势下,Pd / C上醛基的氧化发生速度比在Au / C上慢得多,但在升高的电势下或通过与Au合金化,醛基的氧化作用大大增强。发现Pd-Au双金属催化剂在比单金属催化剂更低的电势下获得了深度氧化产物(FFCA和FDCA),并且产物分布取决于电极电势和表面合金成分。 Pd-Au摩尔比为2:1和1:2的双金属催化剂(Pd2Au1 / C和Pd1Au2 / C)表现出单组分均具有易醇和醛基氧化的优势,从而大大提高了HMF转化率和对完全氧化的选择性FDCA。

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