Net-1,2-Hydrogen Atom Transfer of Amidyl Radicals: Toward the Synthesis of 1,2-Diamine Derivatives

Hydrogen atom transfer (HAT) processes are among the most useful approaches for the selective construction of C­(sp3)–C­(sp3) bonds. 1,5-HAT with heteroatom-centered radicals (O•, N•) have been well established and are favored relative to other 1,n-HAT processes. In comparison, net 1,2-HAT processes...

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Veröffentlicht in:Journal of the American Chemical Society 2023-07, Vol.145 (29), p.16045-16057
Hauptverfasser: Jiang, Yonggang, Liu, Dongxiang, Rotella, Madeline E., Deng, Guogang, Liu, Zhengfen, Chen, Wen, Zhang, Hongbin, Kozlowski, Marisa C., Walsh, Patrick J., Yang, Xiaodong
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Sprache:eng
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Zusammenfassung:Hydrogen atom transfer (HAT) processes are among the most useful approaches for the selective construction of C­(sp3)–C­(sp3) bonds. 1,5-HAT with heteroatom-centered radicals (O•, N•) have been well established and are favored relative to other 1,n-HAT processes. In comparison, net 1,2-HAT processes have been observed infrequently. Herein, the first amidyl radicalls are reported that preferentially undergo a net 1,2-HAT over 1,5-HAT. Beginning with single electron transfer from 2-azaallyl anions to N-alkyl N-aryloxy amides, the latter generate amidyl radicals. The amidyl radical undergoes a net-1,2-HAT to generate a C-centered radical that participates in an intermolecular radical–radical coupling with the 2-azaallyl radical to generate 1,2-diamine derivatives. Mechanistic and EPR experiments point to radical intermediates. Density functional theory calculations provide support for a base-assisted, stepwise-1,2-HAT process. It is proposed that the generation of amidyl radicals under basic conditions can be greatly expanded to access α-amino C-centered radicals that will serve as valuable synthetic intermediates.
ISSN:0002-7863
1520-5126
1520-5126
DOI:10.1021/jacs.3c04376