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多相催化中的桥接脱氢与氢化:一种统一催化方法的演示

Bridging Dehydrogenation and Hydrogenation in Heterogeneous Catalysis: A Demonstration of a Unified Catalytic Approach.

作者信息

Jangir Jyothi, Jagirdar Balaji R

机构信息

Department of Inorganic and Physical Chemistry, Indian Institute of Science, Bangalore, 560 012, India.

出版信息

Chemistry. 2024 Aug 22;30(47):e202400980. doi: 10.1002/chem.202400980. Epub 2024 Jul 25.

Abstract

In the pursuit of enhancing the applications of hydrogen as an energy carrier, this research delved into the utilization of a singular hybrid catalyst capable of performing both dehydrogenation and hydrogenation processes for Liquid Organic Hydrogen Carriers (LOHCs). This study presents the synthesis and characterization of a hybrid catalyst, combining an organometallic pincer complex with Pd-Ru heterostructures supported on γ-alumina. Unlike conventional transition and noble metal nanoparticles, the use of a pincer complex offers exceptional thermal stability due to its aryl backbone, which is advantageous for various endothermic dehydrogenation reactions of hydrocarbons in LOHCs. This pioneering hybrid catalyst is a novel approach, demonstrating a proof of concept. In this study, we utilized the hybrid catalyst to investigate the dehydrogenation and hydrogenation of a lower enthalpic system, specifically the cyclooctane-cyclooctene system. The dehydrogenation of cyclooctane was conducted at 443 K using tertiary butyl ethylene as a sacrificial hydrogen acceptor, while the hydrogenation of cyclooctene reaction catalyzed by Pd-Ru nanostructures occurred at 298 K and 1 atm H. The results showed successful tandem dehydrogenation-hydrogenation reactions. However, challenges were noted in terms of catalytic activity and recyclability, providing valuable insights for further refinement and optimization.

摘要

在致力于增强氢作为能量载体的应用的过程中,本研究深入探讨了一种单一混合催化剂的利用,该催化剂能够对液态有机氢载体(LOHCs)进行脱氢和氢化过程。本研究介绍了一种混合催化剂的合成与表征,该催化剂将有机金属钳形配合物与负载在γ-氧化铝上的钯-钌异质结构相结合。与传统的过渡金属和贵金属纳米颗粒不同,钳形配合物因其芳基主链而具有出色的热稳定性,这对于LOHCs中各种烃的吸热脱氢反应是有利的。这种开创性的混合催化剂是一种新颖的方法,证明了概念的可行性。在本研究中,我们利用该混合催化剂研究了一个低焓体系的脱氢和氢化,特别是环辛烷-环辛烯体系。环辛烷的脱氢反应在443 K下使用叔丁基乙烯作为牺牲氢受体进行,而由钯-钌纳米结构催化的环辛烯氢化反应在298 K和1 atm氢气下发生。结果显示成功进行了串联脱氢-氢化反应。然而,在催化活性和可回收性方面存在挑战,为进一步改进和优化提供了有价值的见解。

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