4.8 Article

Observation of Borane-Olefin Proximity Interaction Governing the Structure and Reactivity of Boron-Containing Macrocycles

Journal

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION
Volume 60, Issue 26, Pages 14630-14635

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/anie.202103512

Keywords

boranes; density functional calculations; macrocycles; noncovalent interactions; reaction mechanisms

Funding

  1. MEXT [JP20H05868, JP 20H05869]
  2. JSPS KAKENHI [JP19K22165, JP20H02722]
  3. JST CREST [JPMJCR18I4]
  4. JST ERATO [JPMJER1903]
  5. Research Program of Dynamic Alliance for Open Innovation Bridging Human, Environment and Materials in Network Joint Research Center for Materials and Devices
  6. [20J22568]

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A close intramolecular borane-olefin interaction operates in macrocyclic systems containing borane and olefinic groups, with the magnitude of interaction changing depending on the Lewis acidity of the borane moiety and the size of the macrocycles, resulting in different reaction modes. The experimental observation with theoretical supports provides a deeper understanding of fundamental boron-mediated interactions and may lead to the development of new organic transformations involving molecular activation by boranes.
While attractive interactions between borane and olefin have been postulated to trigger various boron-mediated organic transformations, proximity structures of these functional groups, other than the formation of weak van der Waals complexes, have never been directly observed. Here we show that a close intramolecular borane-olefin interaction operates in macrocyclic systems containing borane and olefinic groups obtained by multi-step 1,2-carboboration between a strained alkyne and 9-borafluorene derivatives. Depending on Lewis acidity of the borane moiety and the size of the macrocycles, the magnitude of interaction changes, resulting in different reaction modes. The whole picture of the multi-step reactions has been revealed experimentally with theoretical supports. The present finding may not only provide a deeper understanding of the fundamental boron-mediated interaction but also lead to the development of new organic transformations involving molecular activation by boranes.

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