首页> 外文期刊>Particulate Science and Technology: An International Journal >Hybrid sonochemic urea-nitrate combustion preparation of CuO/ZnO/Al2O3 nanocatalyst used in fuel cell-grade hydrogen production from methanol: Effect of sonication and fuel/nitrate ratio
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Hybrid sonochemic urea-nitrate combustion preparation of CuO/ZnO/Al2O3 nanocatalyst used in fuel cell-grade hydrogen production from methanol: Effect of sonication and fuel/nitrate ratio

机译:来自甲醇燃料电池级氢气生产的CuO / ZnO / Al2O3纳米催化剂的杂种Sonochemic尿素燃烧制剂:超声处理和燃料/硝酸盐比的影响

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Fuel cell-grade hydrogen production has been studied via steam reforming of methanol (SRM) over a series of CuO/ZnO/Al2O3 nanocatalysts fabricated by the combustion method. The effect of sonication and urea/nitrate ratio on the characteristics and catalytic properties of the prepared catalysts has been investigated. The synthesized catalysts were characterized by x-ray diffraction (XRD), field emission scanning electron microscope (FESEM), Particle Size Distribution (PSD), energy dispersive x-ray (EDX), Brunauer-Emmett-Teller (BET) and FTIR analyses XRD patterns showed positive influence of urea/nitrate ratio on CuO and ZnO crystallite sizes. The ultrasonic mixing of primary gel compared with conventional mixing led to lower crystallite size. FESEM images showed that the sample mixed by sonication with a urea/nitrate ratio of 1 had more homogeneous morphology with narrow particle size distribution. EDX results proved the presence of all metals on the surface of the nanocatalysts and better consistence between the gel and surface composition of elements in samples prepared by sonication. Catalytic performance showed that sonication during the mixing of primary gel dramatically increased the methanol conversion. It was also proved that increasing the amount of urea led to lower catalytic activity. The ultrasound- treated nanocatalyst with urea/nitrate =1 was the best sample in terms of activity and selectivity. It was stable in the SRM for 1200 min without considerable change in methanol conversion and product selectivity.
机译:通过通过燃烧方法制造的一系列CuO / ZnO / Al2O3纳米催化剂,通过甲醇(SRM)蒸汽重整研究燃料电池级氢气产生。研究了超声处理和尿素/硝酸盐比对制备催化剂的特性和催化性能的影响。通过X射线衍射(XRD),场发射扫描电子显微镜(FESEM),粒度分布(PSD),能量分散X射线(EDX),Brunauer-Emmett-Teller(BET)和FTIR分析来表征合成催化剂。 XRD图案显示尿素/硝酸盐比对CuO和ZnO微晶尺寸的阳性影响。初级凝胶的超声波混合与常规混合LED较低的微晶尺寸。 FeSEM图像显示,通过尿素/硝酸盐比混合的样品与1的尿素率为1具有更高的粒度分布的均匀形态。 EDX结果证明了纳米催化剂表面上的所有金属的存在,以及通过超声处理制备的样品中元素的凝胶和表面组成之间的更好的一致性。催化性能表明,在初级凝胶混合过程中超声处理显着增加了甲醇转化率。还证实,增加尿素量导致催化活性降低。用尿素/硝酸盐的超声处理纳米催化剂= 1是活性和选择性方面的最佳样品。它在SRM中稳定1200分钟,而不具有相当大的甲醇转化率和产品选择性。

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