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Synthesis and reactivity of low-coordinate iron(II) fluoride complexes and their use in the catalytic hydrodefluorination of fluorocarbons

机译:低配位氟化铁(II)配合物的合成,反应及其在氟烃催化加氢脱氟中的应用

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Transition metal fluoride complexes are of interest because they are potentially useful in a multitude of catalytic applications, including C-F bond activation and fluorocarbon functionalization. We report the first crystallographically characterized examples of molecular iron(II) fluorides: [(LFe)-Fe-Me(mu-F)](2) (1(2)) and (LFeF)-Fe-tBu (2) (L = bulky beta-diketiminate). These complexes react with donor molecules (L'), yielding trigonal-pyramidal complexes (LFeF)-Fe-R(L'). The fluoride ligand is activated by the Lewis acid Et2O center dot BF3, forming (LFe)-Fe-tBu(OEt2)(eta(1)-BF4) (3), and is also silaphilic, reacting with silyl compounds such as Me3SiSSiMe3, Me3SiCCSiMe3, and Et3SiH to give new thiolate (LFeSSiMe3)-Fe-tBu (4), acetylide (LFeCCSiMe3)-Fe-tBu (5), and hydride [(LFe)-Fe-Me(mu-H)](2) (6(2)) complexes. The hydrodefluorination (HDF) of perfluorinated aromatic compounds (hexafluorobenzene, pentafluoropyridine, and octafluorotoluene) with a silane R3SiH (R-3 = (EtO)(3), Et-3, Ph-3, (3,5-(CF3)(2)C6H3)Me-2) is catalyzed by addition of an iron(II) fluoride complex, giving mainly the singly hydrodefluorinated products (pentafluorobenzene, 2,3,5,6-tetrafluoropyridine, and alpha,alpha,alpha,2,3,5,6-heptafluorotoluene, respectively) in up to five turnovers. These catalytic perfluoroarene HDF reactions proceed with activation of the C-F bond para to the most electron-withdrawing group and are dependent on the degree of fluorination and solvent polarity. Kinetic studies suggest that hydride generation is the rate-limiting step in the HDF of octafluorotoluene, but the active intermediate is unknown. Mechanistic considerations argue against oxidative addition and outer-sphere electron transfer pathways for perfluoroarene HDF. Fluorinated olefins are also hydrodefluorinated (up to 10 turnovers for hexafluoropropene), most likely through a hydride insertion/beta-fluoride elimination mechanism. Complexes 12 and 2 thus provide a rare example of a homogeneous system that activates C-F bonds without competitive C-H activation and use an inexpensive 3d transition metal.
机译:过渡金属氟化物络合物是令人感兴趣的,因为它们可能在包括C-F键活化和碳氟化合物官能化在内的多种催化应用中有用。我们报告了分子式氟化铁(II)的第一个晶体学表征的例子:[[(LFe)-Fe-Me(mu-F)](2)(1(2))和(LFeF)-Fe-tBu(2)( L =庞大的β-二酮)。这些络合物与供体分子(L')反应,产生三角-金字塔络合物(LFeF)-Fe-R(L')。氟化物配体被路易斯酸Et2O中心点BF3活化,形成(LFe)-Fe-tBu(OEt2)(eta(1)-BF4)(3),并且与硅烷基化合物(例如Me3SiSSiMe3)反应是亲硅的, Me3SiCCSiMe3和Et3SiH生成新的硫醇盐(LFeSSiMe3)-Fe-tBu(4),乙炔化物(LFeCCSiMe3)-Fe-tBu(5)和氢化物[[LFe)-Fe-Me(mu-H)](2) (6(2))个复合物。全氟芳族化合物(六氟苯,五氟吡啶和八氟甲苯)与硅烷R3SiH的加氢脱氟(HDF)(R-3 =(EtO)(3),Et-3,Ph-3,(3,5-(CF3)( 2)C6H3)Me-2)通过添加氟化铁(II)络合物来催化,主要产生单加氢氟化产物(五氟苯,2,3,5,6-四氟吡啶和α,α,α,2,3 ,5,6-七氟甲苯),最多可进行五次周转。这些催化的全氟芳烃HDF反应在最吸电子基团的对位进行C-F键活化,并且取决于氟化程度和溶剂极性。动力学研究表明,氢化物的生成是八氟甲苯HDF中的限速步骤,但活性中间体尚不清楚。机械方面的考虑反对全氟芳烃HDF的氧化加成和外球电子转移途径。氟化烯烃也被加氢氟化(六氟丙烯最多可转换10次),很可能是通过氢化物插入/β-氟化物消除机理实现的。因此,配合物12和2提供了均相系统的罕见实例,该均相系统无需竞争性的C-H活化即可活化C-F键,并使用廉价的3d过渡金属。

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