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A study of Cu/ZnO/Al2O3 methanol catalysts prepared by flame combustion synthesis

机译:火焰燃烧合成Cu / ZnO / Al2O3甲醇催化剂的研究

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The flame combustion synthesis of Cu/ZnO/Al2O3 catalysts for the synthesis of methanol from CO, CO2, and H-2 is investigated. The oxides are generated in a premixed flame from the acetylacetonate vapours of Cu, Zn, and Al mixed with the fuel and air prior to combustion. The flame-generated powder is examined by X-ray powder diffraction, determination of the specific surface area by the BET method, determination of the copper dispersion in the reduced catalyst by a novel N2O method, transmission electron microscopy, and testing of the catalytic properties in a catalytic microreactor. A low peak temperature and quench cooling of the flame tend to increase the dispersion of the phases and the specific surface area of the particles. Properties of both the ternary composition, the three binary compositions, and the pure oxides are discussed. The calculation of simultaneous phase and chemical equilibrium is used in the assessment of the phase composition of the particles. The specific surface area varies from 100 m(2)/g or a little below for samples without Al to several hundred m(2)/g for the respective compositions of pure Al2O3 and ZnAl2O4, Copper dispersion after reduction varies from 1.8 to 14.1%. A ternary catalyst with the composition of Cu:Zn:Al = 45:45: 10 has the highest catalytic activity of all samples tested. This catalyst is also very selective and stable toward thermal deactivation. The role of the individual catalyst components in the optimal catalyst is discussed. (C) 2003 Elsevier Inc. All rights reserved. [References: 15]
机译:研究了用于从CO,CO2和H-2合成甲醇的Cu / ZnO / Al2O3催化剂的火焰燃烧合成。氧化物是在预混合火焰中由燃烧前与燃料和空气混合的Cu,Zn和Al的乙酰丙酮蒸气生成的。通过X射线粉末衍射检查火焰产生的粉末,通过BET方法确定比表面积,通过新型N2O方法确定还原催化剂中铜的分散度,通过透射电子显微镜检查,以及测试催化性能在催化微反应器中。较低的峰值温度和火焰的急冷倾向于增加相的分散度和颗粒的比表面积。讨论了三元组成,三种二元组成和纯氧化物的性质。同时相和化学平衡的计算用于评估颗粒的相组成。比表面积从无铝样品的100 m(2)/ g或稍低于200 m(2)/ g到纯Al2O3和ZnAl2O4的相应成分的数百m(2)/ g,还原后铜分散度从1.8到14.1%不等。在所有测试样品中,组成为Cu:Zn:Al = 45:45:10的三元催化剂具有最高的催化活性。该催化剂对热失活也具有很高的选择性和稳定性。讨论了各个催化剂组分在最佳催化剂中的作用。 (C)2003 Elsevier Inc.保留所有权利。 [参考:15]

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