首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Shape- and size-controlled synthesis of Cu nanoparticles wrapped on RGO nanosheet catalyst and their outstanding stability and catalytic performance in the hydrogenation reaction of dimethyl oxalate
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Shape- and size-controlled synthesis of Cu nanoparticles wrapped on RGO nanosheet catalyst and their outstanding stability and catalytic performance in the hydrogenation reaction of dimethyl oxalate

机译:含有rgo纳米液催化剂的Cu纳米粒子的形状和尺寸控制的合成及其在草酸二甲酯氢化反应中的出色稳定性和催化性能

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Considerable interest has been paid in the last few years to the important environmentally benign catalytic hydrogenation reaction of dimethyl oxalate (DMO) to produce methyl glycolate (MG), ethylene glycol (EG) and ethanol (ETOH). SiO _(2) -supported noble metal elements, such as Au, Ag and Ru, have been nominated as efficient catalysts for the production of high MG selectivity. In this work, noble-metal-free Cu nanoparticles wrapped on reduced graphene oxide (RGO) nanosheets were synthesized using a green in situ sonochemical method in an aqueous medium and then applied without the calcination step as a robust catalyst in the DMO hydrogenation reaction. Moreover, the effects of ultrasound (US), ammonia (NH _(4) OH), a combination of both US and NH _(4) OH, and Cu loading (10, 25 and 45?wt%) on the morphology and catalytic performance of the produced Cu/RGO catalysts were studied in detail. Interestingly, transmission electron microscopy images revealed that a dramatic morphology evolution of the Cu catalysts from ultra small dots to elongated and leaf-like nanoparticles shapes occurred, depending on simple modification of the reaction parameters. Notably, the obtained catalytic results demonstrated that among the different produced six catalysts, the prepared Cu/RGO catalyst using 20 kHz of ultrasound and in the presence of ammonia with 25 wt% Cu loading displayed the highest MG selectivity (98.8%) at a relatively low reaction temperature (210 °C), while, the synthesized Cu/RGO catalyst with 45 wt% Cu loading exhibited the highest ETOH selectivity (94%) at 240 °C. Moreover, both catalysts showed long-term stability for at least 300 h while maintaining the high DMO conversion and selectivity ratio. The comprehensive characterization to the as-prepared, reduced and spent catalysts concluded that the synergistic ratio of Cu ~(+) /(Cu ~(+) + Cu ~(0) ), the high dispersion of Cu nanoparticles, the defective edges, sites and electron transfer provided from RGO were the main reasons for the obtained superior catalytic activity and long-term stability.
机译:在过去几年中,在最近几年中支付了相当大的兴趣,这是草酸二甲酯(DMO)的重要环境良性催化氢化反应,以生产乙醇酸甲酯(Mg),乙二醇(例如)和乙醇(EtOH)。 SiO_(2)-Supported贵金属元素,例如Au,Ag和Ru,已被提名为高效催化剂,用于生产高Mg选择性。在这项工作中,在水性介质中使用绿色化素化化学方法在含有绿色化学方法中合成缠绕在还原的石墨烯(RGO)纳米细胞上的贵金属无金属Cu纳米颗粒,然后在DMO氢化反应中施加煅烧步骤,在没有煅烧步骤的情况下施加煅烧步骤。此外,超声(US),氨(NH _(4)OH)的影响,US和NH _(4)oh的组合,和Cu负载(10,25和45〜wt%)的形态学和研究了所生产的Cu / Rgo催化剂的催化性能。有趣的是,透射电子显微镜图像显示,取决于反应参数的简单改性,发生来自超小点到细长的Cu催化剂的巨大形态学和叶状纳米颗粒形状。值得注意的是,所获得的催化结果证明,在不同产生的六种催化剂中,制备的Cu / Rgo催化剂使用20kHz的超声和在氨存在下,具有25wt%Cu载荷的氨,相对呈现最高的Mg选择性(98.8%)低反应温度(210℃),同时,具有45wt%Cu载荷的合成的Cu / Rgo催化剂在240℃下表现出最高的EtOH选择性(94%)。此外,两种催化剂在保持高DMO转化率和选择性比率的同时显示至少300小时的长期稳定性。综合表征以制备的制备,减少和花催化剂得出结论,Cu〜(+)/(Cu〜(+)+ Cu〜(0)的协同比,Cu纳米粒子的高分散体,缺陷的边缘,从RGO提供的网站和电子转移是获得优异的催化活性和长期稳定性的主要原因。

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