Sahoo Dipankar, Imam Mohammad R, Peterca Mihai, Partridge Benjamin E, Wilson Daniela A, Zeng Xiangbing, Ungar Goran, Heiney Paul A, Percec Virgil
Roy & Diana Vagelos Laboratories, Department of Chemistry , University of Pennsylvania , Philadelphia , Pennsylvania 19104-6323 , United States.
Department of Physics and Astronomy , University of Pennsylvania , Philadelphia , Pennsylvania 19104-6396 , United States.
J Am Chem Soc. 2018 Oct 17;140(41):13478-13487. doi: 10.1021/jacs.8b09174. Epub 2018 Oct 4.
The supramolecular column is an archetypal architecture in the field of periodic liquid crystalline and crystalline arrays. Columns are generated via self-assembly, coassembly, and polymerization of monomers containing molecules shaped as discs, tapered, twin- and Janus-tapered, crowns, hat-shaped crowns, and fragments thereof. These supramolecular columns can be helical and therefore exhibit chirality. In contrast, spheres represent a fundamentally distinct architecture, generated from conical and crown-like molecules, which self-organize into body-centered cubic, Pm3̅ n cubic (also known as Frank-Kasper A15), and tetragonal (also known as Frank-Kasper σ) phases. Supramolecular spherical aggregates are not known to further assemble into a columnar architecture, except as an intermediate state between a columnar periodic array and a cubic phase. In the present work, a chiral dendronized cyclotetraveratrylene (CTTV) derivative is demonstrated to self-organize into a supramolecular column unexpectedly constructed from supramolecular spheres, with no subsequent transition to a cubic phase. Structural and retrostructural analysis using a combination of differential scanning calorimetry, X-ray diffraction (XRD), molecular modeling, and simulation of XRD patterns reveals that this CTTV derivative, which is functionalized with eight chiral first-generation minidendrons, self-organizes via a column-from-spheres model. The transition from column to column-from-spheres was monitored by circular dichroism spectroscopy, which demonstrated that both the supramolecular column and supramolecular spheres are chiral. This column-from-spheres model, which unites two fundamentally distinct self-assembled architectures, provides a new mechanism to self-organize supramolecular columnar architectures.
超分子柱是周期性液晶和晶体阵列领域中的一种典型结构。柱是通过含有盘状、锥形、双锥形和雅努斯锥形、冠形、帽形冠及其片段形状分子的单体的自组装、共组装和聚合而生成的。这些超分子柱可以是螺旋状的,因此表现出手性。相比之下,球体代表一种根本不同的结构,由锥形和冠状分子生成,它们自组装成体心立方、Pm3̅ n立方(也称为弗兰克 - 卡斯珀A15)和四方(也称为弗兰克 - 卡斯珀σ)相。除了作为柱状周期性阵列和立方相之间的中间状态外,超分子球形聚集体不会进一步组装成柱状结构。在本工作中,一种手性树枝状化环四藜芦烯(CTTV)衍生物被证明能自组装成一种意外地由超分子球体构建的超分子柱,且随后不会转变为立方相。使用差示扫描量热法、X射线衍射(XRD)、分子建模以及XRD图谱模拟相结合的结构和逆向结构分析表明,这种用八个手性第一代微型树枝状分子功能化的CTTV衍生物通过球成柱模型进行自组装。通过圆二色光谱监测从柱到球成柱的转变,结果表明超分子柱和超分子球体都是手性的。这种球成柱模型将两种根本不同的自组装结构结合在一起,为超分子柱状结构的自组装提供了一种新机制。