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Liquid-Crystalline Mesogens Based on Cyclo[6]aramides: Distinctive Phase Transitions in Response to Macrocyclic Host–Guest Interactions

  • Xiaowei Li
  • , Bao Li
  • , Long Chen
  • , Jinchuan Hu
  • , Chengdanyang Wen
  • , Qingdong Zheng
  • , Lixin Wu
  • , Huaqiang Zeng
  • , Bing Gong
  • , Lihua Yuan
  • Sichuan University
  • Jilin University
  • CAS - Fujian Institute of Research on the Structure of Matter
  • Agency for Science, Technology and Research, Singapore

Research output: Contribution to journalArticlepeer-review

59 Scopus citations

Abstract

Producing macrocyclic mesogens that are responsive to guest encapsulation presents a significant challenge. Cyclo[6]aramides, a type of macrocycle with a hydrogen-bond-constrained backbone, exhibit thermotropic lamellar, discotic nematic, hexagonal, and rectangular columnar mesophases over a considerably wide temperature range, including at room temperature. Additionally, cyclo[6]aramides show unusual mesophase transitions from lamellar to hexagonal columnar phase mediated by macrocyclic host–guest (H–G) interactions between the macrocycles and alkylammonium salts. The phase transition, triggered by an organic guest engaging in H–G interactions with a macrocyclic cavity, provides a novel strategy for manipulating the properties of liquid-crystalline materials. The crystal structure of a homologous cyclo[6]aramide reveals a disk-shaped, near-planar molecular backbone that facilitates intermolecular π–π stacking and leads to columnar assembly.

Original languageEnglish
Pages (from-to)11147-11152
Number of pages6
JournalAngewandte Chemie - International Edition
Volume54
Issue number38
DOIs
StatePublished - Sep 14 2015

Keywords

  • host–guest systems
  • liquid crystals
  • macrocycles
  • mesogens
  • mesophase transitions

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