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Is the Electrophilicity of the Metal Nitrene the Sole Predictor of Metal-Mediated Nitrene Transfer to Olefins? Secondary Contributing Factors as Revealed by a Library of High-Spin Co(II) Reagents

  • Anshika Kalra
  • , Vivek Bagchi
  • , Patrina Paraskevopoulou
  • , Purak Das
  • , Lin Ai
  • , Yiannis Sanakis
  • , Grigorios Raptopoulos
  • , Sudip Mohapatra
  • , Amitava Choudhury
  • , Zhicheng Sun
  • , Thomas R. Cundari
  • , Pericles Stavropoulos

Research output: Contribution to journalArticlepeer-review

Abstract

Recent research has highlighted the key role played by the electron affinity of the active metal-nitrene/imido oxidant as the driving force in nitrene additions to olefins to afford valuable aziridines. The present work showcases a library of Co(II) reagents that, unlike the previously examined Mn(II) and Fe(II) analogues, demonstrate reactivity trends in olefin aziridinations that cannot be solely explained by the electron affinity criterion. A family of Co(II) catalysts (17 members) has been synthesized with the assistance of a trisphenylamido-amine scaffold decorated by various alkyl, aryl, and acyl groups attached to the equatorial amidos. Single-crystal X-ray diffraction analysis, cyclic voltammetry and EPR data reveal that the high-spin Co(II) sites (S = 3/2) feature a minimal [N 3 N] coordination and span a range of 1.4 V in redox potentials. Surprisingly, the Co(II)-mediated aziridination of styrene demonstrates reactivity patterns that deviate from those anticipated by the relevant electrophilicities of the putative metal nitrenes. The representative L 4 Co catalyst (-COCMe 3 arm) is operating faster than the L 8 Co analogue (-COCF 3 arm), in spite of diminished metal-nitrene electrophilicity. Mechanistic data (Hammett plots, KIE, stereocontrol studies) reveal that although both reagents follow a two-step reactivity path (turnover-limiting metal-nitrene addition to the C b atom of styrene, followed by product-determining ring-closure), the L 4 Co catalyst is associated with lower energy barriers in both steps. DFT calculations indicate that the putative [L 4 Co]NTs and [L 8 Co]NTs species are electronically distinct, inasmuch as the former exhibits a single-electron oxidized ligand arm. In addition, DFT calculations suggest that including London dispersion corrections for L 4 Co (due to the polarizability of the tert -Bu substituent) can provide significant stabilization of the turnover-limiting transition state. This study highlights how small ligand modifications can generate stereoelectronic variants that in certain cases are even capable of overriding the preponderance of the metal-nitrene electrophilicity as a driving force.

Original languageAmerican English
JournalOrganometallics
Volume40
DOIs
StatePublished - Jun 4 2021

Disciplines

  • Chemistry

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