4.8 Article

Regio- and diastereoselective intermolecular [2+2] cycloadditions photocatalysed by quantum dots

Journal

NATURE CHEMISTRY
Volume 11, Issue 11, Pages 1034-1040

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/s41557-019-0344-4

Keywords

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Funding

  1. Air Force Office of Scientific Research [9550-17-1-0271]
  2. Center for Bio-Inspired Energy Science, an Energy Frontier Research Center - US Department of Energy (DOE), Office of Science, Basic Energy Sciences (BES) [DE-SC0000989]
  3. International Institute for Nanotechnology at Northwestern University
  4. NIH [1S10OD012016-01/1S10RR019071-01A1]
  5. Soft and Hybrid Nanotechnology Experimental (SHyNE) Resource [NSF ECCS-1542205]
  6. State of Illinois
  7. International Institute for Nanotechnology (IIN)

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Light-driven [2+2] cycloaddition is the most direct strategy to build tetrasubstituted cyclobutanes, core components of many lead compounds for drug development. Significant advances in the chemoselectivity and enantioselectivity of [2+2] photo-cycloadditions have been made, but exceptional and tunable diastereoselectivity and regioselectivity (head-to-head versus head-to-tail adducts) is required for the synthesis of bioactive molecules. Here we show that colloidal quantum dots serve as visible-light chromophores, photocatalysts and reusable scaffolds for homo- and hetero-intermolecular [2+2] photocycloadditions of 4-vinylbenzoic acid derivatives, including aryl-conjugated alkenes, with up to 98% switchable regioselectivity and 98% diastereoselectivity for the previously minor syn-cyclobutane products. Transient absorption spectroscopy confirms that our system demonstrates catalysis triggered by triplet-triplet energy transfer from the quantum dot. The precisely controlled triplet energy levels of the quantum dot photocatalysts facilitate efficient and selective heterocoupling, a major challenge in direct cyclobutane synthesis.

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