A new transition-metal-free borylation of aryl and vinyl halides using 1,1-bis[(pinacolato)boryl]alkanes as boron sources is described. In this transformation one of the boron groups from 1,1-bis[(pinacolato)boryl]alkanes is selectively transferred to aryl and vinyl halides in the presence of sodium tert-butoxide as the only activator to form organoboronate esters. Under the developed borylation conditions, a broad range of organohalides are borylated with excellent chemoselectivity and functional group compatibility, thus offering a rare example of a transition-metal-free borylation protocol. Experimental and theoretical studies have been performed to elucidate the reaction mechanism, revealing the unusual formation of Lewis acid/base adduct between organohalides and α-borylcarbanion, generated in situ from the reaction of 1,1-bis[(pinacolato)boryl]alkanes with an alkoxide base, to facilitate the borylation reactions.

Download full-text PDF

Source
http://dx.doi.org/10.1021/jacs.6b11757DOI Listing

Publication Analysis

Top Keywords

transition-metal-free borylation
12
aryl vinyl
12
vinyl halides
12
borylation aryl
8
experimental theoretical
8
borylation
5
chemoselective coupling
4
11-bis[pinacolatoboryl]alkanes
4
coupling 11-bis[pinacolatoboryl]alkanes
4
11-bis[pinacolatoboryl]alkanes transition-metal-free
4

Similar Publications

Highly Selective Boron-Wittig Reaction: A Practical Method to Synthesize Trans-Aryl Alkenes.

Chemistry

September 2024

Institute of Molecular Plus, Department of Chemistry, School of Pharmaceutical Science and Technology, Faculty of Medicine, Tianjin University, Weijin Road 92, Tianjin, 300072, China.

Article Synopsis
  • * The traditional Wittig reaction, while popular for making olefins due to its ease, struggles with controlling cis-trans selectivity, limiting its effectiveness.
  • * A new Boron-Wittig reaction using gem-bis(boryl)alkanes and aldehydes overcomes this limitation by producing trans-olefins with higher selectivity and efficiency, supported by detailed studies on its reaction mechanism.
View Article and Find Full Text PDF

Functional group interconversion is an important asset in organic synthesis. Phenols/anilines being naturally abundant and the carbonyl being the most common in a wide range of bioactive molecules, an efficient conversion is of prime interest. The reported methods require transition metal catalyzed cross coupling which limits its applicability.

View Article and Find Full Text PDF

The addition of chlorotrimethylsilane to a boron-mediated, transition-metal-free N activation reaction leads to the isolation of multiple potassium boryl(silyl)hydrazido species, likely trapping products of a terminal dinitrogen complex of boron. One of these silylated N species can be protonated or methylated, providing access to mono- to tetrafunctionalized hydrazines in two steps from N and in the absence of transition metals.

View Article and Find Full Text PDF

Alkyl boronic esters are highly valuable compounds in organic chemistry and related fields due to their good stability and highly versatile reactivity. In this edge article, stereoselective borylative couplings of vinyl iodides with various nucleophiles, alkenes or alkynes is reported. These coupling reactions proceed through stereospecific hydroboration and subsequent stereospecific 1,2-metallate rearrangement.

View Article and Find Full Text PDF

Transition metal-free carbonyl directed boron-Wittig reaction of α-bis(boryl)carbanions with the corresponding isatins or with the α-keto esters/amides was achieved to access alkenyl oxindoles in good yield and high stereoselectivity.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!