Abstract

A DFT study has been conducted to understand the asymmetric alkyl–alkyl bond formation through nickel-catalysed reductive coupling of racemic alkyl bromide with olefin in the presence of hydrosilane and K3PO4. The key findings of the study include: (i) under the reductive experimental conditions, the Ni(ii) precursor is easily activated/reduced to Ni(0) species which can serve as an active species to start a Ni(0)/Ni(ii) catalytic cycle. (ii) Alternatively, the reaction may proceed via a Ni(i)/Ni(ii)/Ni(iii) catalytic cycle starting with a Ni(i) species such as Ni(i)–Br. The generation of a Ni(i) active species via comproportionation of Ni(ii) and Ni(0) species is highly unlikely, because the necessary Ni(0) species is strongly stabilized by olefin. Alternatively, a cage effect enabled generation of a Ni(i) active catalyst from the Ni(ii) species involved in the Ni(0)/Ni(ii) cycle was proposed to be a viable mechanism. (iii) In both catalytic cycles, K3PO4 greatly facilitates the hydrosilane hydride transfer for reducing olefin to an alkyl coupling partner. The reduction proceeds by converting a Ni–Br bond to a Ni–H bond via hydrosilane hydride transfer to a Ni–alkyl bond via olefin insertion. On the basis of two catalytic cycles, the origins for enantioconvergence and enantioselectivity control were discussed.

Highlights

  • Electronic Supplementary Information (ESI) available: [details of any supplementary information available should be included here]

  • We have performed DFT calculations to disclose the mechanisms for the asymmetric alky-alky bond formation via nickel-catalysed reductive enantioconvergent crosscoupling of racemic alkyl bromides with olefins in the presence of hydrosilane and K3PO4

  • The study suggests that both nickel (0) and nickel (I)-Br could act as the active catalyst to mediate the reductive coupling

Read more

Summary

Introduction

Electronic Supplementary Information (ESI) available: [details of any supplementary information available should be included here]. After the precatalyst initiation to generate the nickel (0) species, the coupling sequentially proceeds via outer-sphere oxidative addition, hydride transfer with K3PO4@[Si]H complex, alkene migration insertion, and reductive elimination to form alkylalkyl bond.

Results
Conclusion

Talk to us

Join us for a 30 min session where you can share your feedback and ask us any queries you have

Schedule a call

Disclaimer: All third-party content on this website/platform is and will remain the property of their respective owners and is provided on "as is" basis without any warranties, express or implied. Use of third-party content does not indicate any affiliation, sponsorship with or endorsement by them. Any references to third-party content is to identify the corresponding services and shall be considered fair use under The CopyrightLaw.