4.8 Article

An Amine-Assisted Ionic Monohydride Mechanism Enables Selective Alkyne cis-Semihydrogenation with Ethanol: From Elementary Steps to Catalysis

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JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 143, 期 12, 页码 4824-4836

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AMER CHEMICAL SOC
DOI: 10.1021/jacs.1c01472

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资金

  1. National Key R&D Program of China [2016YFA0202900]
  2. National Natural Science Foundation of China [21825109, 21821002, 21732006]
  3. Chinese Academy of Sciences [XDB20000000, QYZDB-SSW-SLH016]
  4. K. C. Wong Education Foundation

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This study reports a coordination-induced ionic monohydride mechanism for Z-selective semihydrogenation of alkynes with ethanol, which selectively reacts with alkynes over the corresponding Z-alkenes. The key role of an amine in promoting alcoholysis is essential for the monohydride mechanism, demonstrating excellent performance in terms of substrate scope, generality, and compatibility.
The selective synthesis of Z-alkenes in alkyne semihydrogenation relies on the reactivity difference of the catalysts toward the starting materials and the products. Here we report Z-selective semihydrogenation of alkynes with ethanol via a coordination-induced ionic monohydride mechanism. The EtOH-coordination-driven Cl- dissociation in a pincer Ir(III) hydridochloride complex (NCP)IrHCl (1) forms a cationic monohydride, [(NCP)IrH(EtOH)]Cl-+(-), that reacts selectively with alkynes over the corresponding Z-alkenes, thereby overcoming competing thermodynamically dominant alkene Z-E isomerization and overreduction. The challenge for establishing a catalytic cycle, however, lies in the alcoholysis step; the reaction of the alkyne insertion product (NCP)IrCl(vinyl) with EtOH does occur, but very slowly. Surprisingly, the alcoholysis does not proceed via direct protonolysis of the Ir-C(vinyl) bond. Instead, mechanistic data are consistent with an anion-involved alcoholysis pathway involving ionization of (NCP)IrCl(vinyl) via EtOH-for-Cl substitution and reversible protonation of Cl- ion with an Ir(III)-bound EtOH, followed by beta-H elimination of the ethoxy ligand and C(vinyl)-H reductive elimination. The use of an amine is key to the monohydride mechanism by promoting the alcoholysis. The 1-amine-EtOH catalytic system exhibits an unprecedented level of substrate scope, generality, and compatibility, as demonstrated by Z-selective reduction of all alkyne classes, including challenging enynes and complex polyfunctionalized molecules. Comparison with a cationic monohydride complex bearing a noncoordinating BArF- ion elucidates the beneficial role of the Cl- ion in controlling the stereoselectivity, and comparison between 1-amine-EtOH and 1-NaOtBu-EtOH underscores the fact that this base variable, albeit in catalytic amounts, leads to different mechanisms and consequently different stereoselectivity.

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