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首页> 外文期刊>Angewandte Chemie >Formic Acid-Assisted Selective Hydrogenolysis of 5-Hydroxymethylfurfural to 2,5-Dimethylfuran over Bifunctional Pd Nanoparticles Supported on N-Doped Mesoporous Carbon
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Formic Acid-Assisted Selective Hydrogenolysis of 5-Hydroxymethylfurfural to 2,5-Dimethylfuran over Bifunctional Pd Nanoparticles Supported on N-Doped Mesoporous Carbon

机译:甲酸辅助选择性氢解溶解5-羟甲基糠醛至2,5-二甲基呋喃的双掺杂介孔碳的双官能PD纳米颗粒

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摘要

Biomass-derived 5-hydroxymethylfurfural (HMF) is regarded as one of the most promising platform chemicals to produce 2,5-dimethylfuran (DMF) as a potential liquid transportation fuel. Pd nanoparticles supported on N-containing and N-free mesoporous carbon materials were prepared, characterized, and applied in the hydrogenolysis of HMF to DMF under mild reaction conditions. Quantitative conversion of HMF to DMF was achieved in the presence of formic acid (FA) and H-2 over Pd/NMC within 2 h. The reaction mechanism, especially the multiple roles of FA, was explored through a detailed comparative study by varying hydrogen source, additive, and substrate as well as by applying in situ ATR-IR spectroscopy. The major role of FA is to shift the dominant reaction pathway from the hydrogenation of the aldehyde group to the hydrogenolysis of the hydroxymethyl group via the protonation by FA at the C-OH group, lowering the activation barrier of the C-O bond cleavage and thus significantly enhancing the reaction rate. XPS results and DFT calculations revealed that Pd2+ species interacting with pyridine-like N atoms significantly enhance the selective hydrogenolysis of the C-OH bond in the presence of FA due to their high ability for the activation of FA and the stabilization of H-.
机译:生物质衍生的5-羟甲基糠醛(HMF)被认为是生产2,5-二甲基呋喃(DMF)的最有前景的平台化学品之一,是一种潜在的液体运输燃料。制备了负载于含氮和无氮介孔碳材料上的钯纳米颗粒,并对其进行了表征,并在温和的反应条件下将其应用于HMF氢解成DMF。在甲酸(FA)和H-2存在下,HMF在Pd/NMC上在2小时内实现了DMF的定量转化。通过改变氢源、添加剂和底物以及应用原位ATR-IR光谱,通过详细的对比研究,探索了反应机理,尤其是FA的多重作用。FA的主要作用是通过C-OH基上的FA质子化,将主要的反应途径从醛基的氢化转移到羟甲基的氢解,降低C-O键断裂的激活屏障,从而显著提高反应速率。XPS结果和DFT计算表明,Pd2+物种与类吡啶N原子相互作用显著增强了在FA存在下C-OH键的选择性氢解,这是由于它们对FA的高度活化和H-的稳定能力。

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