Roy and 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.
ACS Nano. 2017 Jan 24;11(1):983-991. doi: 10.1021/acsnano.6b07599. Epub 2017 Jan 5.
Chiral, shape, and liquid crystalline memory effects are well-known to produce commercial macroscopic materials with important applications as springs, sensors, displays, and memory devices. A supramolecular orientational memory effect that provides complex nanoscale arrangements was only recently reported. This supramolecular orientational memory was demonstrated to preserve the molecular orientation and packing within supramolecular units of a self-assembling cyclotriveratrylene crown at the nanoscale upon transition between its columnar hexagonal and Pm3̅n cubic periodic arrays. Here we report the discovery of supramolecular orientational memory in a dendronized perylene bisimide (G2-PBI) that self-assembles into tetrameric crowns and subsequently self-organizes into supramolecular columns and spheres. This supramolecular orientation memory upon transition between columnar hexagonal and body-centered cubic (BCC) mesophases preserves the 3-fold cubic [111] orientations rather than the 4-fold [100] axes, generating an unusual tetrahedral arrangement of supramolecular columns. These results indicate that the supramolecular orientational memory concept may be general for periodic arrays of self-assembling dendrons and dendrimers as well as for other periodic and quasiperiodic nanoscale organizations comprising supramolecular spheres, generated from other organized complex soft matter including block copolymers and surfactants.
手性、形状和液晶记忆效应是众所周知的,它们可以产生具有重要应用的商业宏观材料,如弹簧、传感器、显示器和存储设备。最近才报道了一种超分子取向记忆效应,它提供了复杂的纳米级排列。这种超分子取向记忆被证明可以在自组装的环三藜芦烯冠醚的柱状六方和 Pm3̅n 立方周期性阵列之间的转变中,在纳米尺度上保持超分子单元内分子的取向和堆积。在这里,我们报告了在一个树枝状化的苝二酰亚胺(G2-PBI)中发现的超分子取向记忆,它自组装成四聚体冠醚,然后自组织成超分子柱和球体。这种超分子取向记忆在柱状六方和体心立方(BCC)中间相之间的转变中保留了 3 重立方[111]取向,而不是 4 重[100]轴,从而产生了超分子柱的不寻常的四面体排列。这些结果表明,超分子取向记忆的概念可能适用于自组装树枝状大分子和树状聚合物的周期性阵列,以及其他由包括嵌段共聚物和表面活性剂在内的复杂软物质组织而成的周期性和准周期性纳米级组织。