2019
DOI: 10.3389/fchem.2019.00596
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Mechanistic Features in Al(I)-Mediated Oxidative Addition of Aryl C–F Bonds: Insights From Density Functional Theory Calculations

Abstract: The oxidative addition of a range of robust aryl C–F bonds to a single Al(I) center supported by a (NacNac)− bidentate ligand ((NacNac)− = [ArNC(Me)CHC(Me)NAr]− and Ar = 2,6–Pr2iC6H3) have been explored by density functional theory calculations. Our calculations demonstrate that the Al(I) center-mediated C–F insertion generally proceeds via the concerted mechanism that involve both the donation (nAl→σC-F*) and back-donation (σF(p)→πAl(p)*) interactions. In addition, the predicted free energy barriers for the C… Show more

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Cited by 11 publications
(9 citation statements)
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References 50 publications
(54 reference statements)
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“… [77] The herein proposed cooperation between the Zn and Al metal centers has been verified by calculating the mechanism for the direct oxidative addition of LAl I to the Ph‐F bond (Figure S59). In agreement with previous calculations,[ 78 , 79 ] the high activation enthalpy of +27.8 kcal mol −1 for this reaction is nearly double that calculated for the conversion: C3 → TS1 → C4 . Note that the C3 → C4 conversion is endothermic (due to loss of aromaticity) and that the C−F bond in C4 (or C5 ) is still intact.…”
Section: Resultssupporting
confidence: 92%
“… [77] The herein proposed cooperation between the Zn and Al metal centers has been verified by calculating the mechanism for the direct oxidative addition of LAl I to the Ph‐F bond (Figure S59). In agreement with previous calculations,[ 78 , 79 ] the high activation enthalpy of +27.8 kcal mol −1 for this reaction is nearly double that calculated for the conversion: C3 → TS1 → C4 . Note that the C3 → C4 conversion is endothermic (due to loss of aromaticity) and that the C−F bond in C4 (or C5 ) is still intact.…”
Section: Resultssupporting
confidence: 92%
“…Despite the surge of interest in the activation of strong C–F bonds by main-group element compounds, ,, examples involving gallium complexes have, to the best of our knowledge, not been reported, but Li/Ga heterobimetallics have been successfully utilized in C–H bond activation of fluoro­arenes . Furthermore, bond-activation processes by the mononuclear carbene analogs of aluminum and gallium have been actively studied in the past decade, and a recent computational study predicts that the gallanediyl 3 should be able to oxidatively add fluoro­arenes, although associated with higher barriers compared to the aluminum and boron derivatives . Hence, we expected 2 to be reactive toward C–F bonds and monitored its reaction with fluoro­arenes by 1 H NMR spectroscopy.…”
supporting
confidence: 88%
“…17 Furthermore, bond-activation processes by the mononuclear carbene analogs of aluminum and gallium have been actively studied in the past decade, 18 and a recent computational study predicts that the gallanediyl 3 should be able to oxidatively add fluoroarenes, although associated with higher barriers compared to the aluminum and boron derivatives. 19 Hence, we expected 2 to be reactive toward C−F bonds and monitored its reaction with fluoroarenes by 1 H NMR spectroscopy. Quantitative conversion of hexafluorobenzene (a), pentafluorobenzene (b), and 1,2,3,4-tetrafluorobenzene (c) was observed after 1, 2, and 48 h, respectively, Scheme 2.…”
mentioning
confidence: 99%
“…Considering the recent interest in bidentate βdiketiminate (BDI) compounds in catalysis, 35 potential to catalyze the oxidative addition of σ bonds such as aryl C−F bonds. 37,38 Since the Al(I) compound acts as a Lewis base, it can easily form a metal−metal bond with a metallic Lewis acid. Indeed, a set of cationic BDI alkaline earth metal (Ae) complexes with main group metal−metal bonds have been synthesized by the Harder group 39,40 and the Crimmin group.…”
mentioning
confidence: 99%
“…used a BDI ligand, HC­(CMeNAr) 2 – (Ar = 2,6- i Pr 2 C 6 H 3 ), to synthesize the low valent aluminum compound [{HC­(CMeNAr) 2 }­Al] which is a stable aluminum analogue of a carbene with a lone pair on Al . The Al­(I) center has the potential to catalyze the oxidative addition of σ bonds such as aryl C–F bonds. , Since the Al­(I) compound acts as a Lewis base, it can easily form a metal–metal bond with a metallic Lewis acid. Indeed, a set of cationic BDI alkaline earth metal (Ae) complexes with main group metal–metal bonds have been synthesized by the Harder group , and the Crimmin group .…”
mentioning
confidence: 99%