Department of Chemistry, University of Basel, BPR 1096, Mattenstrasse 24a, 4058, Basel, Switzerland.
Department of Inorganic and Analytical Chemistry, University of Geneva, 30 quai E. Ansermet, 1211, Geneva 4, Switzerland.
Chemistry. 2022 Jul 26;28(42):e202200912. doi: 10.1002/chem.202200912. Epub 2022 Jun 21.
The allosteric positive cooperativity accompanying the formation of compact [Cu (α,α'-diimine) ] building blocks contributed to the historically efficient synthesis of metal-containing catenates and knotted assemblies. However, its limited magnitude can easily be overcome by the negative chelate cooperativity that controls the overall formation of related polymetallic multistranded helicates and grids. Despite the more abundant use of analogous dioxygen-resistant [Ag (α,α'-diimine) ] units in modern entangled metallo-supramolecular assemblies, a related thermodynamic justification was absent. Solid-state structural characterizations show the successive formation of [Ag (α,α'-diimine)(CH CN)][X] and [Ag (α,α'-diimine) ][X] upon the stepwise reactions of α,α'-diimine=2,2'-bipyridine (bpy) or 1,10-phenanthroline (phen) derivatives with AgX (X=BF , ClO , PF ). In room-temperature, 5-10 mM acetonitrile solutions, these cationic complexes exist as mixtures in fast exchange on the NMR timescale. Spectrophotometric titrations using the unsubstituted bpy and phen ligands point to the statistical (=non-cooperative) binding of two successive bidentate ligands around Ag , a mechanism probably driven by the formation of hydrophobic belts, that overcomes the unfavorable decrease in the positive charge borne by the metallic cation. Surprisingly, the addition of methyl groups adjacent to the nitrogen donors (6,6' positions in dmbpy; 2,9 positions in dmphen) induces positive cooperativity for the formation of [Ag(dmbpy) ] and [Ag(dmphen) ] , a trend assigned to additional stabilizing interligand interactions. Adding rigid and polarizable phenyl side arms in [Ag(Brdmbpy) ] further reinforces the positively cooperative process, while limiting the overall decrease in metal-ligand affinity.
伴随紧凑 [Cu(α,α'-二亚胺)] 构建块形成的变构正协同作用有助于历史上高效合成含金属的索烃和纽结组装体。然而,其有限的幅度很容易被控制相关多金属多股螺旋体和网格整体形成的负螯合协同作用所克服。尽管在现代纠缠的金属超分子组装体中更大量地使用类似的抗氧 [Ag(α,α'-二亚胺)] 单元,但缺乏相关的热力学解释。固态结构特征表明,α,α'-二亚胺=2,2'-联吡啶(bpy)或 1,10-菲咯啉(phen)衍生物与 AgX(X=BF 4, ClO 4, PF 6 )逐步反应时,相继形成 [Ag(α,α'-二亚胺)(CH 3 CN)][X]和[Ag(α,α'-二亚胺)][X]。在室温、5-10 mM 乙腈溶液中,这些阳离子配合物在 NMR 时间尺度上以快速交换的形式存在于混合物中。使用未取代的 bpy 和 phen 配体进行的分光光度滴定表明,两个连续的双齿配体围绕 Ag 统计(=非协同)结合,这种机制可能是由形成疏水性带驱动的,克服了带正电荷的金属阳离子所带来的不利下降。令人惊讶的是,在氮供体(dmbpy 的 6,6'位;dmphen 的 2,9 位)相邻添加甲基基团会诱导 [Ag(dmbpy)]和[Ag(dmphen)]的形成产生正协同作用,这种趋势归因于额外的稳定配体间相互作用。在 [Ag(Brdmbpy)]中添加刚性和极化的苯基侧臂进一步增强了正协同过程,同时限制了金属-配体亲和力的整体下降。