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Low-temperature selective catalytic dehydrogenation of methylcyclohexane by surface protonics

机译:表面质子的低温选择性催化脱氢甲基环己烷

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The methylcyclohexane (MCH)-toluene cycle is a promising liquid organic hydride system as a hydrogen carrier. Generally, MCH dehydrogenation has been conducted over Pt-supported catalysts, for which it requires temperatures higher than 623 K because of its endothermic nature. For this study, an electric field was applied to Pt/TiO2 catalyst to promote MCH dehydrogenation at low temperatures. Selective dehydrogenation was achieved with the electric field application exceeding thermodynamic equilibrium, even at 423 K. With the electric field, "inverse" kinetic isotope effect (KIE) was observed by accelerated proton collision with MCH on the Pt/TiO2 catalyst. Moreover, Pt/TiO2 catalyst showed no methane by-production and less coke formation during MCH dehydrogenation. DRIFTS and XPS measurements revealed that electron donation from TiO2 to Pt weakened the interaction between catalyst surface and pi-coordination of toluene. Results show that the electric field facilitated MCH dehydrogenation without methane and coke by-production over Pt/TiO2 catalyst.
机译:甲基环己烷(MCH) - 溶剂循环是作为氢载体的有前途的液体有机氢化物体系。通常,MCH脱氢已经通过Pt负载的催化剂进行,因为它需要高于623k的温度,因为其吸热性质。对于该研究,将电场应用于Pt / TiO2催化剂,以在低温下促进MCH脱氢。通过电场施加超过热力学平衡的电场应用,即使在423k的情况下,通过在Pt / TiO 2催化剂上与MCH的加速质子碰撞观察“逆”动力学同位素效应(Kie),甚至可以实现选择性脱氢。此外,在MCH脱氢过程中,Pt / TiO 2催化剂在MCH脱氢期间没有甲烷通过 - 生产和更少的焦炭形成。漂移和XPS测量表明,从TiO 2到Pt的电子捐赠削弱了催化剂表面与甲苯的催化剂表面之间的相互作用。结果表明,电磁场促进了MCH脱氢,没有甲烷和焦炭通过PT / TiO2催化剂产生的焦炭。

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    《RSC Advances 》 |2019年第48期| 共6页
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  • 正文语种 eng
  • 中图分类 化学 ;
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