Literature DB >> 24067712

Alkane desaturation by concerted double hydrogen atom transfer to benzyne.

Dawen Niu1, Patrick H Willoughby, Brian P Woods, Beeraiah Baire, Thomas R Hoye.   

Abstract

The removal of two vicinal hydrogen atoms from an alkane to produce an alkene is a challenge for synthetic chemists. In nature, desaturases and acetylenases are adept at achieving this essential oxidative functionalization reaction, for example during the biosynthesis of unsaturated fatty acids, eicosanoids, gibberellins and carotenoids. Alkane-to-alkene conversion almost always involves one or more chemical intermediates in a multistep reaction pathway; these may be either isolable species (such as alcohols or alkyl halides) or reactive intermediates (such as carbocations, alkyl radicals, or σ-alkyl-metal species). Here we report a desaturation reaction of simple, unactivated alkanes that is mechanistically unique. We show that benzynes are capable of the concerted removal of two vicinal hydrogen atoms from a hydrocarbon. The discovery of this exothermic, net redox process was enabled by the simple thermal generation of reactive benzyne intermediates through the hexadehydro-Diels-Alder cycloisomerization reaction of triyne substrates. We are not aware of any single-step, bimolecular reaction in which two hydrogen atoms are simultaneously transferred from a saturated alkane. Computational studies indicate a preferred geometry with eclipsed vicinal C-H bonds in the alkane donor.

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Year:  2013        PMID: 24067712      PMCID: PMC3818522          DOI: 10.1038/nature12492

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  19 in total

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  27 in total

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8.  Competition between classical and hexadehydro-Diels-Alder (HDDA) reactions of HDDA triynes with furan.

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9.  Dichlorination of (hexadehydro-Diels-Alder generated) benzynes and a protocol for interrogating the kinetic order of bimolecular aryne trapping reactions.

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10.  New Hindered Amide Base for Aryne Insertion into Si-P, Si-S, Si-N, and C-C Bonds.

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Journal:  J Am Chem Soc       Date:  2018-10-10       Impact factor: 15.419

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