4.8 Article

Site-Selective Acceptorless Dehydrogenation of Aliphatics Enabled by Organophotoredox/Cobalt Dual Catalysis

期刊

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 143, 期 40, 页码 16470-16485

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jacs.1c05479

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资金

  1. National Basic Research Program of China [2016YFA0202900]
  2. National Natural Science Foundation of China [K18211006, 21825109, 21821002, 21732006]
  3. Shenzhen Science and Technology Program [K20215006]
  4. Strategic Priority Research Program of Chinese Academy of Sciences [XDB20000000]
  5. K. C. Wong Education Foundation

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The visible-light-driven, dual-catalyst system described in the study allows for room-temperature, acceptorless-CDA of aliphatics, providing a simple and efficient method for direct dehydrogenation of chemical feedstocks into functionalized olefins. The system demonstrates exceptional site selectivity and functional group tolerance, as well as the ability to synthesize biologically relevant molecules and pharmaceutical ingredients through late-stage dehydrogenation.
The value of catalytic dehydrogenation of aliphatics (CDA) in organic synthesis has remained largely underexplored. Known homogeneous CDA systems often require the use of sacrificial hydrogen acceptors (or oxidants), precious metal catalysts, and harsh reaction conditions, thus limiting most existing methods to dehydrogenation of non- or low-functionalized alkanes. Here we describe a visible-light-driven, dual-catalyst system consisting of inexpensive organophotoredox and base-metal catalysts for room-temperature, acceptorless-CDA (Al-CDA). Initiated by photoexited 2-chloroanthraquinone, the process involves H atom transfer (HAT) of aliphatics to form alkyl radicals, which then react with cobaloxime to produce olefins and H-2. This operationally simple method enables direct dehydrogenation of readily available chemical feedstocks to diversely functionalized olefins. For example, we demonstrate, for the first time, the oxidant-free desaturation of thioethers and amides to alkenyl sulfides and enamides, respectively. Moreover, the system's exceptional site selectivity and functional group tolerance are illustrated by late-stage dehydrogenation and synthesis of 14 biologically relevant molecules and pharmaceutical ingredients. Mechanistic studies have revealed a dual HAT process and provided insights into the origin of reactivity and site selectivity.

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