3D Covalent Organic Framework with “the” Topology

Author:

Das Saikat1ORCID,Mabuchi Haruna2,Irie Tsukasa2ORCID,Sasaki Kohki2ORCID,Nozaki Mika2ORCID,Tomioka Rina2ORCID,Wen Dan34,Zhao Yu34ORCID,Ben Teng34ORCID,Negishi Yuichi12ORCID

Affiliation:

1. Research Institute for Science & Technology Tokyo University of Science Kagurazaka, Shinjuku‐ku Tokyo 162‐8601 Japan

2. Department of Applied Chemistry Faculty of Science Tokyo University of Science Kagurazaka, Shinjuku‐ku Tokyo 162‐8601 Japan

3. Zhejiang Engineering Laboratory for Green Syntheses and Applications of Fluorine‐Containing Specialty Chemicals Institute of Advanced Fluorine‐Containing Materials Zhejiang Normal University Jinhua 321004 China

4. Key Laboratory of the Ministry of Education for Advanced Catalysis Materials Institute of Physical Chemistry Zhejiang Normal University Jinhua 321004 China

Abstract

AbstractDiscovery of new topology covalent organic frameworks (COFs) is a mainstay in reticular chemistry and materials research because it not only serves as a stepwise guide to the designed construction of covalent‐organic architectures but also helps to comprehend function from structural design point‐of‐view. Proceeding on this track, the first 3D COF, TUS‐38, with the topology is constructed by reticulating a planar triangular 3‐c node of D3h symmetry with a tetragonal prism 8‐c node of D2h symmetry via [3 + 8] reversible imine condensation reaction. TUS‐38 represents a twofold interpenetrated multidirectional pore network with a high degree of crystallinity and structural integrity. Interestingly, stemming from the nitrogen‐rich s‐triazine rings with electron‐deficient character and ─C ═ N─ linkages composing the TUS‐38 framework that benefit to the charge–transfer and hence dipole–dipole electrostatic interactions between the framework and iodine in addition to exclusive topological characteristics of the exotic the net, TUS‐38 achieves an exemplary capacity for iodine vapor uptake reaching 6.3 g g−1. Recyclability studies evidence that TUS‐38 can be reused at least five times retaining 95% of its initial adsorption capacity; while density functional theory (DFT) calculations have heightened the understanding of the interactions between iodine molecules and the framework.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Natural Science Foundation of Zhejiang Province

Ogasawara Foundation for the Promotion of Science and Engineering

Yazaki Memorial Foundation for Science and Technology

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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