A New Platform of B/N-Doped Cyclophanes: Access to a π-Conjugated Block-Type B N Macrocycle with Strong Dipole Moment and Unique Optoelectronic Properties.

Angew Chem Int Ed Engl

Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials, Key Laboratory of Cluster Science of the Ministry of Education, School of Chemistry and Chemical Engineering, Beijing Institute of Technology of China, Beijing, 102488, China.

Published: May 2022

AI Article Synopsis

  • The study presents a novel design for B/N-doped cyclophanes, featuring a structure where electron-donor (triarylamines) and acceptor (triarylboranes) components are placed on opposite sides of a π-extended ring system.
  • Density Functional Theory (DFT) calculations show that this design leads to a higher dipole moment and a smaller HOMO-LUMO energy gap in the macrocycle MC-b-B3N3 compared to its alternate configuration, MC-alt-B3N3.
  • The arrangement of donor and acceptor elements in MC-b-B3N3 promotes strong intramolecular charge transfer, resulting in significant red-shifted luminescence at 612 nm

Article Abstract

We herein describe a new design principle to achieve B/N-doped cyclophane where an electron-donor block of three triarylamines (Ar N) and an acceptor block of three triarylboranes (Ar B) are spatially separated on opposite sides of the π-extended ring system. DFT computations revealed the distinct electronic structure of the block-type macrocycle MC-b-B3N3 with a greatly enhanced dipole moment and reduced HOMO-LUMO energy gap in comparison to its analogue with alternating B and N sites, MC-alt-B3N3. The unique arrangement of borane acceptor Ar B and amine donor Ar N components in MC-b-B3N3 induces exceptionally strong intramolecular charge transfer in the excited state, which is reflected in a largely red-shifted luminescence at 612 nm in solution. The respective linear open-chain oligomer L-b-B3N3 was also synthesized for comparison. Our new approach to donor-acceptor macrocycles offers important fundamental insights and opens up a new avenue to unique optoelectronic materials.

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http://dx.doi.org/10.1002/anie.202200612DOI Listing

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A New Platform of B/N-Doped Cyclophanes: Access to a π-Conjugated Block-Type B N Macrocycle with Strong Dipole Moment and Unique Optoelectronic Properties.

Angew Chem Int Ed Engl

May 2022

Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials, Key Laboratory of Cluster Science of the Ministry of Education, School of Chemistry and Chemical Engineering, Beijing Institute of Technology of China, Beijing, 102488, China.

Article Synopsis
  • The study presents a novel design for B/N-doped cyclophanes, featuring a structure where electron-donor (triarylamines) and acceptor (triarylboranes) components are placed on opposite sides of a π-extended ring system.
  • Density Functional Theory (DFT) calculations show that this design leads to a higher dipole moment and a smaller HOMO-LUMO energy gap in the macrocycle MC-b-B3N3 compared to its alternate configuration, MC-alt-B3N3.
  • The arrangement of donor and acceptor elements in MC-b-B3N3 promotes strong intramolecular charge transfer, resulting in significant red-shifted luminescence at 612 nm
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