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Superaerophilic Materials Are Surprising Catalysts: Wettability‐Induced Excellent Hydrogenation Activity under Ambient H 2 Pressure
Author(s) -
Li Zhaohua,
Cao Changyan,
Zhu Zhongpeng,
Liu Jian,
Song Weiguo,
Jiang Lei
Publication year - 2018
Publication title -
advanced materials interfaces
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.671
H-Index - 65
ISSN - 2196-7350
DOI - 10.1002/admi.201801259
Subject(s) - catalysis , aldehyde , materials science , aerogel , wetting , reaction rate , ambient pressure , chemical engineering , aqueous solution , organic chemistry , chemistry , nanotechnology , composite material , physics , engineering , thermodynamics
Liquid hydrogenation reaction is one of the essential reactions in fine chemical and pharmaceutical industry. The low H 2 concentration on catalyst surface is a major kinetic limitation for these reactions. In this study, it is proposed and demonstrated for the first time that creating superaerophilic surface is an efficient way to increase H 2 concentration on catalyst surface, and thus significantly enhancing the hydrogenation reaction rate in aqueous solution. As a proof of concept, Pd nanoparticles loaded on graphene aerogel (GA) with different degrees of aerophilic/aerophobic surfaces (denoted as Pd/GA, Pd/NGA‐2, and Pd/NGA‐4, respectively) are prepared and tested for hydrogenation reactions. Pd/GA with superaerophilic property (H 2 bursting time within 92 ms) shows the highest catalytic reaction rate in all tested reactions under the same conditions, including hydrogenation of styrene, nitro, and aldehyde compounds. The hydrogenation of aldehyde compounds with Pd/GA at ambient H 2 pressure is even comparable to those of Pd/NGA‐4 and commercial Pd/C with superaerophobic property at 6 bar H 2 pressure. Such strategy is expected to find wide applications in many other catalytic reactions involving gases, and may lead to revolutionary change in fine chemical industry.

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