Department of Chemistry and International Institute for Nanotechnology, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States.
Inorg Chem. 2011 Feb 21;50(4):1411-9. doi: 10.1021/ic101973s. Epub 2010 Dec 28.
The halide-induced ligand rearrangement reaction (HILR) has been employed to provide selective and exclusive in situ formation of heteroligated Rh(I), Pd(II), and Pt(II) complexes with bidentate phosphino-chalcoether ligands. To gain insights on the nature of this unique reaction, we explored this process via the stepwise addition of bidentate phosphino-chalcoether (P, X; X = S or Se) and relevant monodentate phosphine ligands with a Pt(II) metal precursor. The corresponding monoligated complexes were obtained in quantitative yields by reacting 1 equiv of a P, X bidentate ligand with Pt(II) and were fully characterized via single crystal X-ray diffraction studies and heteronuclear ((31)P, (77)Se, and (195)Pt) NMR spectroscopy in solution. These species were further reacted with a second equivalent of either a bidentate ligand or the monodentate ethyl diphenylphosphine ligand, resulting in the clean formation of the heteroligated species or, in the case of the monodentate ligand with an electron-withdrawing bidentate ligand, a mixture of products. On the basis of competitive exchange reactions between these heteroligated, homoligated, and monoligated complexes, we conclude that ligand chelation plays a crucial role in the Pt(II) HILR. The in situ preferable formation of the stable monoligated complex allows for ligand sorting to occur in these systems. In all cases where the heteroligated product results, the driving force to these species is ligand chelation.
卤化物诱导的配体重排反应(HILR)已被用于选择性和专一地原位形成双齿膦基-硫代缩醛配体的异配位 Rh(I)、Pd(II) 和 Pt(II) 配合物。为了深入了解这种独特反应的本质,我们通过逐步添加双齿膦基-硫代缩醛(P,X;X = S 或 Se)和相关的单齿膦配体与 Pt(II) 金属前体来探索这个过程。通过将 1 当量的 P,X 双齿配体与 Pt(II) 反应,可以以定量产率得到相应的单配位配合物,并通过单晶 X 射线衍射研究和溶液中的异核((31)P、(77)Se 和 (195)Pt)NMR 光谱对其进行了充分的表征。这些物种进一步与第二当量的双齿配体或单齿二苯膦乙基配体反应,导致异配位物种的干净形成,或者在单齿配体与吸电子双齿配体的情况下,形成产物混合物。基于这些异配位、同配位和单配位配合物之间的竞争交换反应,我们得出结论,配体螯合在 Pt(II) HILR 中起着至关重要的作用。稳定的单配位配合物的原位优先形成允许在这些体系中发生配体分类。在所有导致异配位产物的情况下,这些物种的驱动力是配体螯合。