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High-Grade Biofuel Synthesis from Paired Electrohydrogenation and Electrooxidation of Furfural Using Symmetric Ru/Reduced Graphene Oxide Electrodes

机译:使用对称RU / X型氧化石墨烯氧化物电极,高级生物燃料合成糠醛的配对电氢化和电氧化

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Electrochemical hydrogenation is a challenging technoeconomic process for sustainable liquid fuel production from biomass-derived compounds. In general, half-cell hydrogenation is paired with water oxidation to generate the low economic value of O_(2) at the anode. Herein, a new strategy for the rational design of Ru/reduced graphene oxide (Ru/RGO) nanocomposites through a cost-effective and straightforward microwave irradiation technique is reported for the first time. The Ru nanoparticles with an average size of 3.5 nm are well anchored into the RGO frameworks with attractive nanostructures to enhance the furfural’s paired electrohydrogenation (ECH) and electrooxidation (ECO) process to achieve high-grade biofuel. Furfural is used as a reactant with the paired electrolyzer to produce furfuryl alcohol and 2-methylfuran at the cathode side. Simultaneously, 2-furic acid and 5-hydroxyfuroic acid along with plenty of H~(+) and e~(–) are generated at the anode side. Most impressively, the paired electrolyzer induces an extraordinary ECH and ECO of furfural, with the desired production of 2-methylfuran (yield = 91% and faradic efficiency (FE) of 95%) at X _(FF) = 97%, outperforming the ECH half-cell reaction. The mechanisms of the half-cell reaction and paired cell reaction are discussed. Exquisite control of the reaction parameters, optimized strategies, and the yield of individual products are demonstrated. These results show that the Ru/RuO nanocomposite is a potential candidate for biofuel production in industrial sectors.
机译:电化学加氢是从生物质衍生化合物中可持续生产液体燃料的一个具有挑战性的技术经济过程。一般来说,半电池加氢与水氧化相结合,以在阳极产生低经济价值的O_2。本文首次报道了一种通过经济高效且简单的微波辐射技术合理设计钌/还原氧化石墨烯(Ru/RGO)纳米复合材料的新策略。平均粒径为3.5 nm的钌纳米颗粒被很好地固定在RGO框架中,并具有诱人的纳米结构,以增强糠醛的成对电氢化(ECH)和电氧化(ECO)过程,从而获得高级生物燃料。糠醛与成对的电解槽一起用作反应物,在阴极侧生产糠醇和2-甲基呋喃。同时,在阳极侧生成2-糠酸和5-羟基糠酸以及大量的H~(+)和e~(-)。最令人印象深刻的是,成对电解槽可诱导糠醛产生非凡的ECH和ECO,在X_FF(FF)=97%的条件下,2-甲基呋喃(产率=91%,法拉第效率(FE)为95%)的预期产量优于ECH半电池反应。讨论了半细胞反应和成对细胞反应的机理。对反应参数的精细控制、优化策略和单个产物的产率进行了演示。这些结果表明,Ru/RuO纳米复合材料是工业部门生物燃料生产的潜在候选材料。

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