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首页> 外文期刊>ChemCatChem >One-Pot Facile Fabrication of Multiple Nickel Nanoparticles Confined in Microporous Silica Giving a Multiple-Cores@Shell Structure as a Highly Efficient Catalyst for Methane Dry Reforming
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One-Pot Facile Fabrication of Multiple Nickel Nanoparticles Confined in Microporous Silica Giving a Multiple-Cores@Shell Structure as a Highly Efficient Catalyst for Methane Dry Reforming

机译:一锅内容夹在微孔二氧化硅中的多个镍纳米粒子的制造,其作为甲烷干重整的高效催化剂,使多芯@壳结构为高效催化剂

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Methane dry reforming (MDR) is a very important reaction, which can efficiently use two kinds of greenhouse gases (CO2 and CH4) to prepare synthesis gas or produce green hydrogen energy. What inhibits the industrialization of MDR is the sintering of active Ni nanoparticles and severe carbon deposition for Ni-based catalysts. To resolve these problems, a novel structured catalyst with multiple ultra-small Ni nanoparticles (4.3 nm) as the core and microporous silica as the shell was rationally fabricated by a facial one-pot reverse micelle method and applied for MDR. The multiple-cores@shell (M-Ni@SiO2) catalyst displays superior carbon resistance and long-term du-rability with the methane and carbon dioxide conversion close to thermodynamic equilibrium and a H-2 to CO molar ratio near 1, whereas the commercial catalyst, Ni/Al2O3, and Ni directly supported on silica spheres (Ni/SiO2) show low stability and notable carbon deposition. The ultra-small Ni particle size and confinement effect of the porous silica shell are believed to be the determining factors for the outstanding performance of the multiple-cores@shell catalyst. The novel multiple-cores@shell structure catalyst could be potentially used for industrial applications of MDR.
机译:甲烷干重整(MDR)是一个非常重要的反应,可以有效地使用两种温室气体(CO2和CH4)来制备合成气或产生绿色氢能量。什么抑制MDR的产业化是活性Ni纳米颗粒的烧结和Ni基催化剂的严重碳沉积。为了解决这些问题,具有多个超小型Ni纳米颗粒(4.3nm)的新型结构催化剂,作为壳体和微孔二氧化硅作为壳体的核心和微孔二氧化硅通过面部1罐反转胶束方法合理地制造并施用于MDR。壳体@ shell(M-Ni @ SiO 2)催化剂含有较高的碳耐碳性和长期Du-olity,甲烷和二氧化碳转化率接近热力学平衡和H-2,靠近1,而是在二氧化硅球(Ni / SiO 2)上直接支持的商业催化剂,Ni / Al 2 O 3和Ni显示出低稳定性和显着的碳沉积。多孔二氧化硅壳的超小型Ni粒径和限制效果被认为是多核壳催化剂的出色性能的确定因素。新型多芯@壳结构催化剂可能用于MDR的工业应用。

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