Bifunctionally Hydrophobic MOF‐Supported Platinum Catalyst for the Removal of Ultralow Concentration Hydrogen Isotope

Author:

Heo Huiryung1,Jang Jeong‐un1,Jeong Euna23,Kim Hyung‐Ju2,Kim Young Jin4,Park Chan Woo2,So Jungseob5,Koh Dong‐Yeun16ORCID

Affiliation:

1. Department of Chemical and Biomolecular Engineering Korea Advanced Institute of Science and Technology 291, Daehak‐ro, Yuseong‐gu Daejeon 34141 Korea

2. Decommissioning Technology Division Korea Atomic Energy Research Institute 111, Daedeok‐daero 989beon‐gil, Yuseong‐gu Daejeon 34057 Korea

3. Department of Chemical Engineering and Applied Chemistry Chungnam National University 99 Daehak‐ro, Yuseong‐gu Daejeon 34134 Korea

4. Department of Environmental Engineering Kyungpook National University 80 Daehak‐ro Daegu 41566 Korea

5. CO2 & Energy Research Center Korea Research Institute of Chemical Technology (KRICT) Daejeon 34114 Korea

6. Saudi Aramco‐KAIST CO2 Management Center 291, Daehak‐ro, Yuseong‐gu Daejeon 34141 Korea

Abstract

Water often presents significant challenges in catalysts by deactivating active sites, poisoning the reaction, and even degrading composite structure. These challenges are amplified when the water participates as a reactant and is fed as a liquid phase, such as trickle bed‐type reactors in a hydrogen‐water isotope exchange (HIE) reaction. The key balance in such multiphase reactions is the precise control of catalyst design to repel bulk liquid water while diffusing water vapor. Herein, a platinum‐incorporated metal‐organic framework (MIL‐101) based bifunctional hydrophobic catalyst functionalized with long alkyl chains (C12, dodecylamine) and further manufactured with poly(vinylidene fluoride), Pt@MIL‐101‐12/PVDF, has been developed which can show dramatically improved catalytic activity under multi‐phase reactions involving hydrogen gas and liquid water. Pt@MIL‐101‐12/PVDF demonstrates enhanced macroscopic water‐blocking properties, with a notable reduction of over 65% in water adsorption capacity and newly introduced liquid water repellency, while exhibiting a negligible increase in mass transfer resistance, i.e., bifunctional hydrophobicity. Excellent catalytic activity, evaluated via HIE reaction, and its durability underscore the impact of bifunctional hydrophobicity. In situ DRIFTS analysis elucidates water adsorption/desorption dynamics within the catalyst composite, highlighting reinforced water diffusion at the microscopic level, affirming the catalyst's bifunctionality in different length scales. With demonstrated radiation resistance, Pt@MIL‐101‐12/PVDF emerges as a promising candidate for isotope exchange reactions.

Publisher

Wiley

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