The tert-butyl group is a common aliphatic motif extensively employed to implement steric congestion and conformational rigidity in organic and organometallic molecules. Because of the combination of a high bond dissociation energy (~100 kcal mol-1) and limited accessibility, in the absence of directing groups, neither radical nor organometallic approaches are effective for the chemical modification of tert-butyl C-H bonds. Herein we overcome these limits by employing a highly electrophilic manganese catalyst, [Mn(CF3bpeb)(OTf)2], that operates in the strong hydrogen bond donor solvent nonafluoro-tert-butyl alcohol (NFTBA) and catalytically activates hydrogen peroxide to generate a powerful manganese-oxo species that effectively oxidizes tert-butyl C-H bonds. Leveraging on the interplay of steric, electronic, medium and torsional effects, site-selective and product chemoselective hydroxylation of the tert-butyl group is accomplished with broad reaction scope, delivering primary alcohols as largely dominant products in preparative yields. Late-stage hydroxylation at tert-butyl sites is demonstrated on 6 densely functionalized molecules of pharmaceutical interest. This work uncovers a novel disconnection approach, harnessing tert-butyl as a potential functional group in strategic synthetic planning for complex molecular architectures.

Chan, S., Palone, A., Bietti, M., Costas, M. (2024). tert-Butyl as a functional group: non-directed catalytic hydroxylation of sterically congested primary C−H bonds. ANGEWANDTE CHEMIE. INTERNATIONAL EDITION, 63(28) [10.1002/anie.202402858].

tert-Butyl as a functional group: non-directed catalytic hydroxylation of sterically congested primary C−H bonds

Bietti, M
;
2024-01-01

Abstract

The tert-butyl group is a common aliphatic motif extensively employed to implement steric congestion and conformational rigidity in organic and organometallic molecules. Because of the combination of a high bond dissociation energy (~100 kcal mol-1) and limited accessibility, in the absence of directing groups, neither radical nor organometallic approaches are effective for the chemical modification of tert-butyl C-H bonds. Herein we overcome these limits by employing a highly electrophilic manganese catalyst, [Mn(CF3bpeb)(OTf)2], that operates in the strong hydrogen bond donor solvent nonafluoro-tert-butyl alcohol (NFTBA) and catalytically activates hydrogen peroxide to generate a powerful manganese-oxo species that effectively oxidizes tert-butyl C-H bonds. Leveraging on the interplay of steric, electronic, medium and torsional effects, site-selective and product chemoselective hydroxylation of the tert-butyl group is accomplished with broad reaction scope, delivering primary alcohols as largely dominant products in preparative yields. Late-stage hydroxylation at tert-butyl sites is demonstrated on 6 densely functionalized molecules of pharmaceutical interest. This work uncovers a novel disconnection approach, harnessing tert-butyl as a potential functional group in strategic synthetic planning for complex molecular architectures.
2024
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHIM/06
Settore CHEM-05/A - Chimica organica
English
manganese; hydrogen peroxide; homogeneous catalysis; fluorinated alcohol solvents; C-H hydroxylation
Chan, S., Palone, A., Bietti, M., Costas, M. (2024). tert-Butyl as a functional group: non-directed catalytic hydroxylation of sterically congested primary C−H bonds. ANGEWANDTE CHEMIE. INTERNATIONAL EDITION, 63(28) [10.1002/anie.202402858].
Chan, S; Palone, A; Bietti, M; Costas, M
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/394529
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