Université de Toulouse, UPS, LHFA, 118 route de Narbonne, 31062 Toulouse, France.
CNRS, LHFA, UMR 5069, 31062 Toulouse, France.
J Am Chem Soc. 2016 Apr 13;138(14):4917-26. doi: 10.1021/jacs.6b01320. Epub 2016 Mar 30.
Reaction of the geminal PAl ligand [Mes2PC(═CHPh)AltBu2] (1) with [Pt(PPh3)2(ethylene)] affords the T-shape Pt complex [(1)Pt(PPh3)] (2). X-ray diffraction analysis and DFT calculations reveal the presence of a significant Pt→Al interaction in 2, despite the strain associated with the four-membered cyclic structure. The Pt···Al distance is short [2.561(1) Å], the Al center is in a pyramidal environment [Σ(C-Al-C) = 346.6°], and the PCAl framework is strongly bent (98.3°). Release of the ring strain and formation of X→Al interactions (X = O, S, H) impart rich reactivity. Complex 2 reacts with CO2 to give the T-shape adduct 3 stabilized by an O→Al interaction, which is a rare example of a CO2 adduct of a group 10 metal and actually the first with η(1)-CO2 coordination. Reaction of 2 with CS2 affords the crystalline complex 4, in which the PPtP framework is bent, the CS2 molecule is η(2)-coordinated to Pt, and one S atom interacts with Al. The Pt complex 2 also smoothly reacts with H2 and benzamide PhCONH2 via oxidative addition of H-H and H-N bonds, respectively. The ensuing complexes 5 and 7 are stabilized by Pt-H→Al and Pt-NH-C(Ph) = O→Al bridging interactions, resulting in 5- and 7-membered metallacycles, respectively. DFT calculations have been performed in parallel with the experimental work. In particular, the mechanism of reaction of 2 with H2 has been thoroughly analyzed, and the role of the Lewis acid moiety has been delineated. These results generalize the concept of constrained geometry TM→LA interactions and demonstrate the ability of Al-based ambiphilic ligands to participate in TM/LA cooperative reactivity. They extend the scope of small molecule substrates prone to such cooperative activation and contribute to improve our knowledge of the underlying factors.
[Mes2PC(═CHPh)AltBu2](1)的二价 PAl 配体与[Pt(PPh3)2(ethylene)]反应,生成 T 型 Pt 配合物[(1)Pt(PPh3)](2)。X 射线衍射分析和 DFT 计算表明,尽管存在与四元环结构相关的应变,但在 2 中存在显著的 Pt→Al 相互作用。Pt···Al 距离很短[2.561(1) Å],Al 中心处于三角锥形环境[Σ(C-Al-C)=346.6°],PCAl 框架强烈弯曲(98.3°)。环应变的释放和 X→Al 相互作用(X=O、S、H)的形成赋予了丰富的反应性。配合物 2 与 CO2 反应,生成由 O→Al 相互作用稳定的 T 型加合物 3,这是 10 族金属与 CO2 加合物的罕见实例,实际上是第一个具有η(1)-CO2 配位的实例。2 与 CS2 反应生成结晶配合物 4,其中 PPtP 框架弯曲,CS2 分子η(2)-配位至 Pt,一个 S 原子与 Al 相互作用。Pt 配合物 2 还能通过 H-H 和 H-N 键的氧化加成分别与 H2 和苯甲酰胺 PhCONH2 平稳反应。随后的配合物 5 和 7 分别通过 Pt-H→Al 和 Pt-NH-C(Ph)=O→Al 桥接相互作用稳定,导致分别形成 5 元和 7 元金属环。同时进行了与实验工作平行的 DFT 计算。特别是,深入分析了 2 与 H2 反应的机理,并阐明了路易斯酸部分的作用。这些结果推广了受约束几何 TM→LA 相互作用的概念,并证明了基于 Al 的两性配体参与 TM/LA 协同反应的能力。它们扩展了易于发生这种协同活化的小分子底物的范围,并有助于提高我们对潜在因素的认识。