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Physicochemical Characterization and H2-TPD Study of Alumina Supported Ruthenium Catalysts

机译:氧化铝负载钌催化剂的理化表征和H2-TPD研究

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A series of alumina supported ruthenium catalysts, which prepared by hydrogen treatment or hydrazine reduction, were characterized by N2 adsorption, X-ray diffraction (XRD), X-ray fluorescence (XRF), CO chemi-sorption, and Temperature-programmed desorption of hydrogen (H2-TPD). In contrast to the samples with conventional hydrogen reduction, there was almost no residual chlorine in the samples using RuCl3 as precursor with hydrazine treatment. Furthermore, the dissolved aluminum could be removed much more easily in basic solution, which led to the higher BET surface and pore volume of hydrazine-reduction catalysts. Therefore, the active phase (Ru metal) would not be contaminated. Three main peaks, which occurred at about 150, 375, and 650 °C, respectively, were observed in the H2-TPD profiles of Ru/Al2O3 catalysts with a high amount of residual chlorine. A new peak of desorption hydrogen centering at 240 °C, which was completely suppressed by the high amount of residual chlorine, might appear in the profiles of the samples with the washing procedure following hydrogen reduction or hydrazine treatment. The peaks with the desorption temperature lower than 500 °C were relative with disso-ciatively adsorbed hydrogen and spillover hydrogen simultaneity, and the peak at above 500 °C was caused by spillover hydrogen and would be stabilized by hydroxyl groups on alumina surface.
机译:通过氢处理或肼还原制备的一系列氧化铝负载的钌催化剂的特征在于N2吸附,X射线衍射(XRD),X射线荧光(XRF),CO化学吸附和程序升温脱附氢(H2-TPD)。与常规还原氢的样品相比,使用RuCl3作为肼处理的前体样品中几乎没有残留氯。此外,溶解的铝可以更容易地在碱性溶液中除去,这导致肼还原催化剂的BET表面和孔体积更高。因此,活性相(Ru金属)不会受到污染。在具有大量残留氯的Ru / Al2O3催化剂的H2-TPD曲线中观察到三个主峰,分别出现在约150、375和650°C。在氢气还原或肼处理后的洗涤过程中,样品的轮廓中可能会出现一个新的以240°C为中心的脱附氢峰,该峰完全被高残留氯抑制。解吸温度低于500°C的峰与分散吸附的氢和溢出氢的同时性有关,而高于500°C的峰是由溢出氢引起的,并且会被氧化铝表面的羟基稳定。

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