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Catalytic performance of silica covered bimetallic nickel-iron encapsulated core-shell microspheres for hydrogen production

机译:二氧化硅的催化性能覆盖双金属镍铁包封核 - 壳体微球,用于氢气生产

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Supported nickel-iron catalysts with core/shell structures (Ni,Fe/SiO2, and Ni/SiO2, Fe (Imp.)) were synthesized by sol-gel microencapsulation and sol-gel microencapsulation-impregnation methods, respectively. Sol-gel microencapsulation resulted in the formation of Ni and Fe containing alloys, where both Fe and Ni were in the core (Ni,Fe/SiO2). In the case of combined microencapsulation-impregnation Ni was placed in the center where Fe was on the shell side (Ni/SiO2, Fe (Imp.)). BET, XRD, SEM, TGA and Raman Spectroscopy techniques were used for catalysts characterization. Catalysts were tested in dry reforming of methane (DRM) reaction which was specially selected to provide a comprehensive utilization of methane and carbon dioxide. The catalytic activity tests were carried out at 750 degrees C and atmospheric pressure, using stainless steel, temperature-controlled tube reactor. After 3 h of reaction, Ni,Fe/SiO2 bimetallic core-shell microsphere catalysts with Ni/Fe ratio of 4/1 and 2/1 indicated the highest CH4 conversions (74% and 68%, respectively) and H-2/CO (0,72 and 0,69) ratios. Ni,Fe/SiO2 catalysts showed higher activity compared to Ni/SiO2, Fe (Imp.) catalysts and an activity increase for both types of catalysts were observed due to increasing Ni amount in catalyst structure. Ni,Fe/SiO2 catalysts were also determined to be highly resistant against coke formation. A significant resistance against coke formation on active sites was achieved via SiC formation during reaction. The catalyst with best performance (4Ni,1Fe/SiO2) was regenerated after use and tested on following three successive cycles under identical experimental conditions. Results indicated similar activity values with negligible deactivation. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:通过溶胶 - 凝胶微胶囊化和溶胶 - 凝胶微胶囊浸渍方法合成了具有芯/壳结构(Ni,Fe / SiO 2和Ni / SiO 2,Fe(Imp.))的镍 - 铁催化剂。溶胶 - 凝胶微封装导致Ni和Fe含有合金的形成,其中Fe和Ni都在核心(Ni,Fe / SiO 2)中。在将微胶囊化的情况下,将浸渍Ni置于Ce在壳侧(Ni / SiO 2,Fe(Imp.))中的中心。 BET,XRD,SEM,TGA和拉曼光谱技术用于催化剂表征。催化剂在甲烷(DRM)反应的干燥重整中进行测试,专门选择提供甲烷和二氧化碳的综合利用。使用不锈钢,温度控制的管反应器,在750℃和大气压下进行催化活性试验。在3小时后,Ni,Fe / SiO2双金属核 - 壳微球微球催化剂,Ni / Fe比为4/1和2/1表示最高的CH 4转换(分别为74%和68%)和H-2 / CO (0,72和0,69)比率。与Ni / SiO2,Fe / SiO 2,Fe / SiO2,Fe(Imp.)催化剂相比,Ni,Fe / SiO 2催化剂的活性较高,并且由于催化剂结构中的Ni量增加,观察到两种类型的催化剂的活性增加。 Ni,Fe / SiO 2催化剂也被确定为对焦炭形成的高度耐药性。通过反应期间通过SiC形成实现了对活性位点上的焦炭形成的显着抗性。在使用后再生具有最佳性能(4NI,1Fe / siO 2)的催化剂在相同的实验条件下进行三次连续三个连续循环后再生。结果表示类似的活动值,失活可忽略不计。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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