Conjugated organic framework with three-dimensionally ordered stable structure and delocalized π clouds

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作者
Jia Guo
Yanhong Xu
Shangbin Jin
Long Chen
Toshihiko Kaji
Yoshihito Honsho
Matthew A. Addicoat
Jangbae Kim
Akinori Saeki
Hyotcherl Ihee
Shu Seki
Stephan Irle
Masahiro Hiramoto
Jia Gao
Donglin Jiang
机构
[1] Institute for Molecular Science,Department of Materials Molecular Science
[2] National Institutes of Natural Sciences,Department of Macromolecular Science
[3] State Key Laboratory of Molecular Engineering of Polymers,Department of Applied Chemistry
[4] Fudan University,WPI
[5] Graduate School of Engineering,Research Initiative
[6] Osaka University,Institute of Transformative Bio
[7] Graduate School of Science,Molecules and Department of Chemistry
[8] Nagoya University,Department of Chemistry
[9] Center for Time-Resolved Diffraction,undefined
[10] KAIST,undefined
[11] Center for Nanomaterials and Chemical Reactions,undefined
[12] Institute for Basic Science,undefined
[13] Present address: Max Planck Institute for Polymer Research,undefined
[14] Ackermannweg 10,undefined
[15] 55128 Mainz,undefined
[16] Germany,undefined
来源
Nature Communications | / 4卷
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摘要
Covalent organic frameworks are a class of crystalline organic porous materials that can utilize π–π-stacking interactions as a driving force for the crystallization of polygonal sheets to form layered frameworks and ordered pores. However, typical examples are chemically unstable and lack intrasheet π-conjugation, thereby significantly limiting their applications. Here we report a chemically stable, electronically conjugated organic framework with topologically designed wire frameworks and open nanochannels, in which the π conjugation-spans the two-dimensional sheets. Our framework permits inborn periodic ordering of conjugated chains in all three dimensions and exhibits a striking combination of properties: chemical stability, extended π-delocalization, ability to host guest molecules and hole mobility. We show that the π-conjugated organic framework is useful for high on-off ratio photoswitches and photovoltaic cells. Therefore, this strategy may constitute a step towards realizing ordered semiconducting porous materials for innovations based on two-dimensionally extended π systems.
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