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Creators/Authors contains: "Lang, Kai"

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  1. null (Ed.)
  2. Abstract

    A new catalytic radical system involving CoII‐based metalloradical catalysis is effective in activating sulfamoyl azides for enantioselective radical 1,6‐amination of C(sp3)−H bonds, affording six‐membered chiral heterocyclic sulfamides in high yields with excellent enantioselectivities. The CoII‐catalyzed C−H amination features an unusual degree of functional‐group tolerance and chemoselectivity. The unique reactivity and stereoselectivity is attributed to the underlying stepwise radical pathway. The resulting optically active cyclic sulfamides can be readily converted into synthetically useful chiral 1,3‐diamine derivatives without loss in enantiopurity.

     
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  3. Abstract

    A new catalytic radical system involving CoII‐based metalloradical catalysis is effective in activating sulfamoyl azides for enantioselective radical 1,6‐amination of C(sp3)−H bonds, affording six‐membered chiral heterocyclic sulfamides in high yields with excellent enantioselectivities. The CoII‐catalyzed C−H amination features an unusual degree of functional‐group tolerance and chemoselectivity. The unique reactivity and stereoselectivity is attributed to the underlying stepwise radical pathway. The resulting optically active cyclic sulfamides can be readily converted into synthetically useful chiral 1,3‐diamine derivatives without loss in enantiopurity.

     
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  4. Abstract

    NovelD2‐symmetric chiral amidoporphyrins with alkyl bridges across two chiral amide units on both sides of the porphyrin plane (designated “HuPhyrin”) have been effectively constructed in a modular fashion to permit variation of the bridge length. The CoIIcomplexes of HuPhyrin, [Co(HuPhyrin)], represent new‐generation metalloradical catalysts where the metal‐centered d‐radical is situated inside a cavity‐like ligand with a more rigid chiral environment and enhanced hydrogen‐bonding capability. As demonstrated with cyclopropanation and aziridination as model reactions, the bridged [Co(HuPhyrin)] functions notably different from the open catalysts, exhibiting significant enhancement in both reactivity and stereoselectivity. Furthermore, the length of the distal alkyl bridge can have a remarkable influence on the catalytic properties.

     
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  5. Abstract

    NovelD2‐symmetric chiral amidoporphyrins with alkyl bridges across two chiral amide units on both sides of the porphyrin plane (designated “HuPhyrin”) have been effectively constructed in a modular fashion to permit variation of the bridge length. The CoIIcomplexes of HuPhyrin, [Co(HuPhyrin)], represent new‐generation metalloradical catalysts where the metal‐centered d‐radical is situated inside a cavity‐like ligand with a more rigid chiral environment and enhanced hydrogen‐bonding capability. As demonstrated with cyclopropanation and aziridination as model reactions, the bridged [Co(HuPhyrin)] functions notably different from the open catalysts, exhibiting significant enhancement in both reactivity and stereoselectivity. Furthermore, the length of the distal alkyl bridge can have a remarkable influence on the catalytic properties.

     
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  6. Abstract

    Cobalt(II)‐based metalloradical catalysis (MRC) has been successfully applied for effective construction of the highly strained 2‐sulfonyl‐1,3‐diazabicyclo[3.1.0]hexane structures in high yields through intramolecular radical aziridination of allylic sulfamoyl azides. The resulting [3.1.0] bicyclic aziridines prove to be versatile synthons for the preparation of a diverse range of 1,2‐ and 1,3‐diamine derivatives by selective ring‐opening reactions. As a demonstration of its application for target synthesis, the metalloradical intramolecular aziridination reaction has been incorporated as a key step for efficient synthesis of a potent neurokinin 1 (NK1) antagonist in 60 % overall yield.

     
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