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Effect of surface composition of yttrium-stabilized zirconia on partial oxidation of methane to synthesis gas

机译:钇稳定氧化锆的表面成分对甲烷部分氧化为合成气的影响

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Catalytic partial oxidation of methane to synthesis gas (CPOM) over yttrium-stabilized zirconia (YSZ) was studied within a wide temperature window (500-1100degC).The catalysts were characterized by X-ray fluorescence (XRF) and low-energy ion scattering (LEIS).The influence of calcination temperature,Y_2O_3 content,and especially impurities such as CaO,TiO_2,and Na_2O on catalytic performance were investigated.Creation of active sites by doping with Y_2O_3 improves the catalytic performance of ZrO_2 significantly.The surface composition rather than the bulk composition determines the catalytic performance of the catalysts in CPOM.As long as YSZ catalyst is not contaminated,the composition of the outermost surface of calcined YSZ is independent of both the concentration of Y_2O_3 in the bulk and calcination temperature;the surface always contains 12 +- 2 mol% Y_2O_3 due to segregation of Y_2O_3.Calcination at higher temperatures creates more active sites per square meter,while the catalyst loses surface area via sintering.The same sintering treatment causes the activity of YSZ containing traces of (earth) alkali oxides to collapse.The effect is probably due to segregation of the impurities to the surface,which either blocks the active surface of YSZ catalyst or forms new phases with different catalytic properties.However,it cannot be ruled out that enhanced segregation of Y_2O_3 contributes to this effect as well.Heterogeneous reactions occur concurrently with homogeneous reactions at temperatures above 950degC during CPOM over YSZ.At such high temperatures,CPOM,steam- and CO_2 reforming,and reverse water-gas shift occur in competition during CPOM.These reforming reactions of methane result in a significant increase in synthesis gas selectivity,although the catalyst activity is still too low to reach thermodynamic equilibrium.
机译:在宽温度范围(500-1100°C)内研究了钇稳定氧化锆(YSZ)上甲烷催化部分氧化为合成气(CPOM)的特点,该催化剂通过X射线荧光(XRF)和低能离子散射进行了表征(LEIS)。研究了煅烧温度,Y_2O_3含量,特别是CaO,TiO_2和Na_2O等杂质对催化性能的影响。通过掺杂Y_2O_3形成活性位可以显着提高ZrO_2的催化性能。只要不污染YSZ催化剂,煅烧过的YSZ的最外层表面的组成与本体中Y_2O_3的浓度和煅烧温度均无关;表面始终由于Y_2O_3的偏析,含有12±2 mol%的Y_2O_3。在较高的温度下煅烧会在每平方米上创建更多的活性位,而催化st会通过烧结而失去表面积。相同的烧结处理会导致含有痕量(地球)碱金属氧化物的YSZ活性降低。其作用可能是由于杂质向表面的偏析所致,从而阻碍了YSZ催化剂的活性表面。或形成具有不同催化性能的新相。但是,不能排除Y_2O_3偏析的增强也起到了这种作用。在CPS超过YSZ期间,在950°C以上的温度下,均相反应与均相反应同时发生。在CPOM的竞争中,会发生蒸汽,CO_2和CO_2的重整以及水煤气的反向转化。这些甲烷的重整反应导致合成气的选择性显着提高,尽管催化剂活性仍然太低而无法达到热力学平衡。

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