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Reversible Coordination of Boron-, Aluminum-, Zinc-, Magnesium- and Calcium-Hydrogen bonds to bent {CuL2} fragments: Heavy sigma-Complexes of the Lightest Coinage Metal

机译:硼,铝,锌,镁和钙 - 氢键与弯曲{CuL2}碎片的可逆配位:最重的铸币金属的重σ-配合物

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摘要

A series of copper(I) complexes bearing electron-deficient β-diketiminate ligands have been prepared. The study includes [{{ArNC(CR3)}2CH}Cu(η2-toluene)n] (Ar = Mes, R = F, n = 0.5, [12·tol]; Ar = C6F5, R = Me, n = 1, [2·tol]; Ar = 2,6-Cl2C6H3, R = H, n = 0.5, [32·tol]). Reactions of [1–3n·tol] with boranes, alanes, a zinc hydride, a magnesium hydride, and a calcium hydride generate the corresponding σ complexes ([1–3·B], [3·B′], [3·Al], [3·Al′], [1–3·Zn], [1·Mg], and [1·Ca]). These species all form reversibly, being in equilibrium with the arene solvates in solution. With the exception of the calcium complex, the complexes have all been characterized by single-crystal X-ray diffraction studies. In solution, the σ-hydride of the aluminum, zinc, magnesium, and calcium derivatives resonates between −0.12 and −1.77 ppm (C6D6 or toluene-d8, 193–298 K). For the σ-borane complexes, the hydrides are observed as a single resonance between 2 and 3.5 ppm (C6D6, 298 K) and bridging and terminal hydrides rapidly exchange on the NMR time scale even at 193 K. Quantification of the solution dynamics by van’t Hoff analysis yields expectedly small values of ΔH° and negative values of ΔS° consistent with weak binding and a reversible process that does not involve aggregation of the copper species. The donor–acceptor complexes can be rationalized in terms of the Dewar–Chatt–Duncanson model. Density functional theory calculations show that the donation of σ-M–H (or E–H) electrons into the 4s-based orbital (LUMO or LUMO+1) of the copper fragment is accompanied by weak back-donation from a dxz-based orbital (HOMO or HOMO–1) into the σ*-M–H (or E–H) orbital.
机译:已经制备了一系列带有电子缺陷的β-二酮基配体的铜(I)配合物。该研究包括[{{ArNC(CR3)} 2CH} Cu(η2-甲苯)n](Ar = Mes,R = F,n = 0.5,[12·tol]; Ar = C6F5,R = Me,n = 1,1,[2·tol]; Ar = 2,6-Cl2C6H3,R = H,n = 0.5,[32·tol])。 [1–3n·tol]与硼烷,丙氨酸,氢化锌,氢化镁和氢化钙的反应生成相应的σ配合物([1–3·B],[3·B'],[3· Al],[3·Al'],[1-3·Zn],[1·Mg]和[1·Ca])。这些物质都可逆地形成,与溶液中的芳烃溶剂化物保持平衡。除钙络合物外,所有络合物均已通过单晶X射线衍射研究表征。在溶液中,铝,锌,镁和钙衍生物的σ-氢化物在-0.12至-1.77 ppm(C6D6或甲苯-d8,193–298 K)之间共振。对于σ-硼烷配合物,氢化物被观察为2至3.5 ppm(C6D6,298 K)之间的单个共振,桥连和末端氢化物即使在193 K时也可以在NMR时标上快速交换。通过van进行溶液动力学定量Hoff分析得出预期的小值ΔH°和负值ΔS°,这与弱结合和不涉及铜物质聚集的可逆过程一致。可以根据杜瓦-沙特-邓肯森模型合理化供体-受体复合体。密度泛函理论计算表明,向铜碎片的4s基轨道(LUMO或LUMO + 1)中提供σ-MH(或E-H)电子会伴随着基于dxz的弱回馈轨道(HOMO或HOMO-1)进入σ* -MH(或EH)轨道。

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