Selective, Transition Metal-free 1,2-Diboration of Alkyl Halides, Tosylates, and Alcohols

Chemistry. 2022 Apr 27;28(24):e202200480. doi: 10.1002/chem.202200480. Epub 2022 Mar 19.

Abstract

Defunctionalization of readily available feedstocks to provide alkenes for the synthesis of multifunctional molecules represents an extremely useful process in organic synthesis. Herein, we describe a transition metal-free, simple and efficient strategy to access alkyl 1,2-bis(boronate esters) via regio- and diastereoselective diboration of secondary and tertiary alkyl halides (Br, Cl, I), tosylates, and alcohols. Control experiments demonstrated that the key to this high reactivity and selectivity is the addition of a combination of potassium iodide and N,N-dimethylacetamide (DMA). The practicality and industrial potential of this transformation are demonstrated by its operational simplicity, wide functional group tolerance, and the late-stage modification of complex molecules. From a drug discovery perspective, this synthetic method offers control of the position of diversification and diastereoselectivity in complex ring scaffolds, which would be especially useful in a lead optimization program.

Keywords: 1,2-diboration; 1,2-diborylalkanes; boron; boronate; metal-free.

MeSH terms

  • Alcohols
  • Alkenes
  • Chemistry Techniques, Synthetic
  • Esters
  • Inorganic Chemicals*
  • Transition Elements*

Substances

  • Alcohols
  • Alkenes
  • Esters
  • Inorganic Chemicals
  • Transition Elements