Triphenylamine[3]arenes: Streamlining Synthesis of a Versatile Macrocyclic Platform for Supramolecular Architectures and Functionalities.

Angew Chem Int Ed Engl

College of Chemistry and Chemical Engineering, Xiamen University, 422 Siming South Road, Siming District, Xiamen, Fujian Province, 361005, P. R. China.

Published: August 2024


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Article Abstract

Triphenylamine[3]arenes (TPA[3]s), featuring [1]paracyclophane backbone with alternating carbon and nitrogen bridging atoms, were synthesized through a BF ⋅ EtO-catalyzed cyclization reaction using triphenylamine derivatized monomers and paraformaldehyde. This molecular design yielded a series of TPA[3] macrocycles with high efficiency, with their facile derivatizations also successfully demonstrated. On account of the strong electron-donating properties of the TPA moieties, these TPA[3]s exhibit remarkable delayed fluorescence, and possess a significant affinity for iodine. Furthermore, their inherent three-fold symmetry rendered TPA[3]s as novel building blocks for the construction of extended frameworks and molecular cages. This advancement expands the versatility of discrete macrocycles into complex architectures, enhancing their applicability across a broad spectrum of applications.

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http://dx.doi.org/10.1002/anie.202409120DOI Listing

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Triphenylamine[3]arenes: Streamlining Synthesis of a Versatile Macrocyclic Platform for Supramolecular Architectures and Functionalities.

Angew Chem Int Ed Engl

August 2024

College of Chemistry and Chemical Engineering, Xiamen University, 422 Siming South Road, Siming District, Xiamen, Fujian Province, 361005, P. R. China.

Article Synopsis
  • Triphenylamine[3]arenes (TPA[3]s) were created using a unique cyclization reaction involving triphenylamine monomers, leading to highly efficient macrocycles with alternating carbon and nitrogen links.
  • The TPA[3]s demonstrate strong electron-donating properties that result in delayed fluorescence and a considerable attraction to iodine.
  • Their symmetrical design allows TPA[3]s to serve as innovative components for building complex structures like frameworks and molecular cages, broadening their potential uses in various fields.
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