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Two-dimensional semiconducting covalent organic frameworks via condensation at arylmethyl carbon atoms.

Shuai BiCan YangWenbei ZhangJunsong XuLingmei LiuDongqing WuXinchen WangYu HanQifeng LiangFan Zhang
Published in: Nature communications (2019)
Construction of organic semiconducting materials with in-plane π-conjugated structures and robustness through carbon-carbon bond linkages, alternatively as organic graphene analogs, is extremely desired for powerfully optoelectrical conversion. However, the poor reversibility for sp2 carbon bond forming reactions makes them unavailable for building high crystalline well-defined organic structures through a self-healing process, such as covalent organic frameworks (COFs). Here we report a scalable solution-processing approach to synthesize a family of two-dimensional (2D) COFs with trans-disubstituted C = C linkages via condensation reaction at arylmethyl carbon atoms on the basis of 3,5-dicyano-2,4,6-trimethylpyridine and linear/trigonal aldehyde (i.e., 4,4″-diformyl-p-terphenyl, 4,4'-diformyl-1,1'-biphenyl, or 1,3,5-tris(4-formylphenyl)benzene) monomers. Such sp2 carbon-jointed-pyridinyl frameworks, featuring crystalline honeycomb-like structures with high surface areas, enable driving two half-reactions of water splitting separately under visible light irradiation, comparable to graphitic carbon nitride (g-C3N4) derivatives.
Keyphrases
  • visible light
  • high resolution
  • water soluble
  • room temperature
  • radiation therapy
  • molecular docking
  • gold nanoparticles
  • radiation induced
  • carbon nanotubes