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Elucidation of sulfidation state and hydrodesulfurization mechanism on ruthenium-cesium sulfide catalysts using S-35 radioisotope tracer methods

机译:用S-35放射性同位素示踪法阐明钌-铯硫化物催化剂的硫化态和加氢脱硫机理

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Alumina-supported ruthenium-cesium catalysts were presulfided using [S-35]H2S pulse tracer method to evaluate their sulfidation state. Subsequently, using these previously S-35-labeled catalysts, HDS reactions of dibenzothiophene (DBT) were performed and the mobility of S-35 introduced during the presulfidation stage was investigated. The results showed that the amount of labile sulfur (SO) was much smaller than the total amount of sulfur accommodated on the catalyst (S-total). DBT conversion and Stotal increased linearly with Ru content. In a second part, labile sulfur amount was also determined under the catalyst working conditions and different results were obtained. Indeed, when the catalysts were marked with [S-35] and with [S-35]DBT under HDS reaction conditions, the obtained labile sulfur quantities (S-0A) were significantly higher than the ones measured during the presulfidation stage (SO). These results showed that the labile sulfur is not formed on RuCs catalysts until the HDS reaction proceeds, which is quite different from that reported before for Mo, Pt, or Pd systems. (C) 2003 Elsevier Science (USA). All rights reserved. [References: 59]
机译:使用[S-35] H2S脉冲示踪法对氧化铝负载的钌-铯催化剂进行预硫化,以评估其硫化状态。随后,使用这些先前用S-35标记的催化剂,进行了二苯并噻吩(DBT)的HDS反应,并研究了在预硫化阶段引入的S-35的迁移率。结果表明,不稳定硫(SO)的量远小于催化剂中硫的总量(S-total)。 DBT转化率和Stotal随Ru含量线性增加。在第二部分中,还测定了催化剂工作条件下的不稳定硫含量,并获得了不同的结果。实际上,当在HDS反应条件下用[S-35]和[S-35] DBT标记催化剂时,获得的不稳定硫含量(S-0A)明显高于在预硫化阶段(SO)测得的硫含量。 。这些结果表明,直到HDS反应进行之前,RuCs催化剂上才不会生成不稳定的硫,这与以前报道的Mo,Pt或Pd系统的硫完全不同。 (C)2003 Elsevier Science(美国)。版权所有。 [参考:59]

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