Bloch Witold M, Abe Yoko, Holstein Julian J, Wandtke Claudia M, Dittrich Birger, Clever Guido H
Faculty of Chemistry and Chemical Biology, TU Dortmund University , Otto-Hahn-Straße 6, 44227 Dortmund, Germany.
Institute for Inorganic Chemistry, Georg-August University Göttingen , Tammannstraße 4, 37077 Göttingen, Germany.
J Am Chem Soc. 2016 Oct 19;138(41):13750-13755. doi: 10.1021/jacs.6b08694. Epub 2016 Oct 6.
Due to the inherent difficulties in achieving a defined and exclusive formation of multicomponent assemblies against entropic predisposition, we present the rational assembly of a heteroleptic [PdLL] coordination cage achieved through the geometric complementarity of two carefully designed ligands, L and L. With Pd(II) cations as rigid nodes, the pure distinctly angular components readily form homoleptic cages, a [PdL] strained helical assembly and a [PdL] box-like structure, both of which were characterized by X-ray analysis. Combined, however, the two ligands could be used to cleanly assemble a cis-[PdLL] cage with a bent architecture. The same self-sorted product was also obtained by a quantitative cage-to-cage transformation upon mixing of the two homoleptic cages revealing the [PdLL] assembly as the thermodynamic minimum. The structure of the heteroleptic cage was examined by ESI-MS, COSY, DOSY, and NOESY methods, the latter of which pointed toward a cis-conformation of ligands in the assembly. Indeed, DFT calculations revealed that the angular ligands and strict Pd(II) geometry strongly favor the cis-[PdLL] species. The robust nature of the cis-[PdLL] cage allowed us to probe the accessibility of its cavity, which could be utilized for shape recognition toward stereoisomeric guests. The ability to directly combine two different backbones in a controlled manner provides a powerful strategy for increasing complexity in the family of [PdL] cages and opens up possibilities of introducing multiple functionalities into a single self-assembled architecture.
由于在克服熵倾向以实现多组分组装体的明确且排他性形成方面存在内在困难,我们展示了一种通过两种精心设计的配体L和L'的几何互补性实现的杂配[PdLL']配位笼的合理组装。以Pd(II)阳离子作为刚性节点,纯的明显呈角形的组分容易形成同配笼,一种[PdL]扭曲螺旋组装体和一种[PdL']盒状结构,二者均通过X射线分析进行了表征。然而,将这两种配体组合使用时,它们可以干净利落地组装出具有弯曲结构的顺式-[PdLL']笼。通过将两种同配笼混合后进行定量的笼对笼转化,也得到了相同的自分类产物,这表明[PdLL']组装体是热力学最小值。通过电喷雾电离质谱(ESI-MS)、同核去偶相关谱(COSY)、扩散排序谱(DOSY)和核Overhauser效应谱(NOESY)方法对杂配笼的结构进行了研究,其中后者表明组装体中配体呈顺式构象。实际上,密度泛函理论(DFT)计算表明,角形配体和严格的Pd(II)几何结构强烈有利于顺式-[PdLL']物种。顺式-[PdLL']笼的稳健性质使我们能够探究其空腔的可及性,该空腔可用于对立体异构客体进行形状识别。以可控方式直接组合两种不同主链的能力为增加[PdL]笼家族的复杂性提供了一种强大策略,并为将多种功能引入单个自组装结构开辟了可能性。