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Oxa- and Azabenzonorbornadienes as Electrophilic Partners under Photoredox/Nickel Dual Catalysis.
Luo, Youran; Gutiérrez-Bonet, Álvaro; Matsui, Jennifer K; Rotella, Madeline E; Dykstra, Ryan; Gutierrez, Osvaldo; Molander, Gary A.
  • Luo Y; Roy and Diana Vagelos Laboratories, Department of Chemistry, University of Pennsylvania, 231 South 34th Street, Philadelphia, Pennsylvania 19104-6323 (USA).
  • Gutiérrez-Bonet Á; Wuyuzhang Honors College, 29, Wangjiang Road, Chengdu, Sichuan, 610064 (China).
  • Matsui JK; Roy and Diana Vagelos Laboratories, Department of Chemistry, University of Pennsylvania, 231 South 34th Street, Philadelphia, Pennsylvania 19104-6323 (USA).
  • Rotella ME; Roy and Diana Vagelos Laboratories, Department of Chemistry, University of Pennsylvania, 231 South 34th Street, Philadelphia, Pennsylvania 19104-6323 (USA).
  • Dykstra R; 0107 Chemistry Building, The Department of Chemistry and Biochemistry. University of Maryland. 8051 Regents Drive College Park, MD 20742 (USA).
  • Gutierrez O; 0107 Chemistry Building, The Department of Chemistry and Biochemistry. University of Maryland. 8051 Regents Drive College Park, MD 20742 (USA).
  • Molander GA; 0107 Chemistry Building, The Department of Chemistry and Biochemistry. University of Maryland. 8051 Regents Drive College Park, MD 20742 (USA).
ACS Catal ; 9(9): 8835-8842, 2019 Sep 06.
Article en En | MEDLINE | ID: mdl-34055458
ABSTRACT
Herein, the introduction of oxa- and azabenzonorbornadienes into photoredox/nickel dual catalysis in a regioselective and diastereoselective transformation is disclosed. The inherent advantages of this dual catalytic system allow the use of alkyl motifs forming exclusively cis-1,2-dihydro-1-naphthyl alcohol backbones using readily accessible 4-alkyl-1,4-dihydropyridines (DHPs). Whereas previous studies have emphasized the use of nucleophilic organometallic coupling partners, this protocol grants access to a rather unexplored core featuring alkyl residues, while avoiding the use of highly reactive organometallic species (i.e., M = Al, Mg, Li, Zn, Zr). DFT calculations support a oxidative addition/reductive elimination mechanism, followed by a Curtin-Hammett scenario that controls the regioselectivity of the process, unlike previously reported transformations that proceed via a carbometalation/ ß-oxygen elimination mechanism.
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