Size‐Selective Capture of Fluorocarbon Gases and Storage of Volatile Halogenated Organic Vapors with Low Boiling Points by Molecular‐Scale Cavities of Crystalline Pillar[n]quinones

Author:

Ohtani Shunsuke1ORCID,Onishi Katsuto1,Wada Keisuke1,Hirohata Tomoki2,Inagi Shinsuke2ORCID,Pirillo Jenny3ORCID,Hijikata Yuh4ORCID,Mizuno Motohiro56ORCID,Kato Kenichi1ORCID,Ogoshi Tomoki17ORCID

Affiliation:

1. Department of Synthetic Chemistry and Biological Chemistry Graduate School of Engineering Kyoto University Katsura, Nishikyo‐ku Kyoto 615–8510 Japan

2. Department of Chemical Science and Engineering School of Materials and Chemical Technology Tokyo Institute of Technology 4259 Nagatsuta‐cho, Midori‐ku Yokohama 226–8502 Japan

3. Graduate School of Engineering Nagoya University Furo‐cho, Chikusa‐ku Nagoya 464–8603 Japan

4. Research Center for Net Zero Carbon Society Institutes of Innovation for Future Society Nagoya University Graduate School of Engineering Building 1 Room 816‐1, Furo‐cho, Chikusa‐ku Nagoya 464–8603 Japan

5. Graduate School of Natural Science and Technology Kanazawa University Kakuma‐machi Kanazawa 920–1192 Japan

6. NanoMaterials Research Institute (NanoMaRi), Kanazawa University Kakuma‐machi Kanazawa 920–1192 Japan

7. WPI Nano Life Science Institute (WPI‐NanoLSI) Kanazawa University Kakuma‐machi Kanazawa 920–1192 Japan

Abstract

AbstractFluorocarbon gases are regarded as one of the largest contributors to serious environmental problems such as ozone‐depletion and global warming, and thus, the development of reclamation technologies is in great demand for reducing emission of such harmful compounds. So far, porous materials such as zeolites, activated carbons, and metal‐organic frameworks (MOFs) have been examined as solid‐state absorbents for fluorocarbon gases. However, such porous materials often suffer from a lack of size‐selectivity in fluorocarbon gas uptakes due to the large‐sized cavities (>1 nm). Herein, it is reported that macrocyclic pillar[n]quinones (P[n]Q, n = 5 or 6) in crystalline state show size‐selective uptake for fluorocarbon gases owing to their molecular‐scale cavities (<1 nm). The P[n]Q also show uptake behaviors for volatile halogenated organic compounds (VHOCs), which are highly toxic. Interestingly, the volatilities of VHOCs within the 1D channels of P[5]Q are drastically reduced compared with those of the bulk VHOC solvents. Experimental results and computational analyses revealed that the excellent storage abilities of the crystalline P[n]Q are a synergic result of their electron‐deficient macrocyclic scaffolds and the basic carbonyl oxygen atoms on their rims.

Funder

Japan Science and Technology Agency

Japan Society for the Promotion of Science

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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