Literature DB >> 18950168

Competing C-F activation pathways in the reaction of Pt(0) with fluoropyridines: phosphine-assistance versus oxidative addition.

Ainara Nova1, Stefan Erhardt, Naseralla A Jasim, Robin N Perutz, Stuart A Macgregor, John E McGrady, Adrian C Whitwood.   

Abstract

A survey of computed mechanisms for C-F bond activation at the 4-position of pentafluoropyridine by the model zero-valent bis-phosphine complex, [Pt(PH3)(PH2Me)], reveals three quite distinct pathways leading to square-planar Pt(II) products. Direct oxidative addition leads to cis-[Pt(F)(4-C5NF4)(PH3)(PH2Me)] via a conventional 3-center transition state. This process competes with two different phosphine-assisted mechanisms in which C-F activation involves fluorine transfer to a phosphorus center via novel 4-center transition states. The more accessible of the two phosphine-assisted processes involves concerted transfer of an alkyl group from phosphorus to the metal to give a platinum(alkyl)(fluorophosphine), trans-[Pt(Me)(4-C5NF4)(PH3)(PH2F)], analogues of which have been observed experimentally. The second phosphine-assisted pathway sees fluorine transfer to one of the phosphine ligands with formation of a metastable metallophosphorane intermediate from which either alkyl or fluorine transfer to the metal is possible. Both Pt-fluoride and Pt(alkyl)(fluorophosphine) products are therefore accessible via this route. Our calculations highlight the central role of metallophosphorane species, either as intermediates or transition states, in aromatic C-F bond activation. In addition, the similar computed barriers for all three processes suggest that Pt-fluoride species should be accessible. This is confirmed experimentally by the reaction of [Pt(PR3)2] species (R = isopropyl (iPr), cyclohexyl (Cy), and cyclopentyl (Cyp)) with 2,3,5-trifluoro-4-(trifluoromethyl)pyridine to give cis-[Pt(F){2-C5NHF2(CF3)}(PR3)2]. These species subsequently convert to the trans-isomers, either thermally or photochemically. The crystal structure of cis-[Pt(F){2-C5NHF2(CF3)}(P iPr3)2] shows planar coordination at Pt with r(F-Pt) = 2.029(3) A and P(1)-Pt-P(2) = 109.10(3) degrees. The crystal structure of trans-[Pt(F){2-C5NHF2(CF3)}(PCyp3)2] shows standard square-planar coordination at Pt with r(F-Pt) = 2.040(19) A.

Entities:  

Year:  2008        PMID: 18950168     DOI: 10.1021/ja8046238

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  4 in total

1.  A C^N Cycloplatinated(II) Fluoride Complex: Photophysical Studies and Csp3-F Bond Formation.

Authors:  Jiyun Hu; Mahshid Nikravesh; Hamid R Shahsavari; Reza Babadi Aghakhanpour; Arnold L Rheingold; Mia Alshami; Yoshie Sakamaki; Hudson Beyzavi
Journal:  Inorg Chem       Date:  2020-11-02       Impact factor: 5.165

2.  Platinum clusters on vacancy-type defects of nanometer-sized graphene patches.

Authors:  Takashi Yumura; Tatsuya Awano; Hisayoshi Kobayashi; Tokio Yamabe
Journal:  Molecules       Date:  2012-07-02       Impact factor: 4.411

3.  Coligand role in the NHC nickel catalyzed C-F bond activation: investigations on the insertion of bis(NHC) nickel into the C-F bond of hexafluorobenzene.

Authors:  Maximilian W Kuntze-Fechner; Hendrik Verplancke; Lukas Tendera; Martin Diefenbach; Ivo Krummenacher; Holger Braunschweig; Todd B Marder; Max C Holthausen; Udo Radius
Journal:  Chem Sci       Date:  2020-10-06       Impact factor: 9.825

4.  A combined experimental and computational study on the reaction of fluoroarenes with Mg-Mg, Mg-Zn, Mg-Al and Al-Zn bonds.

Authors:  Clare Bakewell; Bryan J Ward; Andrew J P White; Mark R Crimmin
Journal:  Chem Sci       Date:  2018-01-23       Impact factor: 9.825

  4 in total

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