Heating-Induced Switching to Hierarchical Liquid Crystallinity Combining Colloidal and Molecular Order in Zwitterionic Molecules

Lotta Gustavsson, Zhong-Peng Lv, Tomy Cherian, Wille Seppälä, Ville Liljeström, Bo Peng, Simo Huotari, Patrice Rannou, Olli Ikkala

Research output: Contribution to journalArticleScientificpeer-review

Abstract

Hierarchical self-assemblies of soft matter involving triggerable or switchable structures at different length scales have been pursued toward multifunctional behaviors and complexity inspired by biological matter. They require several and balanced competing attractive and repulsive interactions, which provide a grand challenge in particular in the “bulk” state, i.e., in the absence of plasticizing solvents. Here, we disclose that zwitterionic bis-n-tetradecylphosphobetaine, as a model compound, shows a complex thermally switchable hierarchical self-assembly in the solvent-free state. It shows polymorphism and heating-induced reversible switching from low-temperature molecular-level assemblies to high-temperature hierarchical self-assemblies, unexpectedly combining colloidal and molecular self-assemblies, as inferred by synchrotron small-angle X-ray scattering (SAXS). The high-temperature phase sustains birefringent flow, indicating a new type of hierarchical thermotropic liquid crystallinity. The high-temperature colloidal-level SAXS reflections suggest indexation as a 2D oblique pattern and their well-defined layer separation in the perpendicular direction. We suggest that the colloidal self-assembled motifs are 2D nanoplatelets formed by the lateral packing of the molecules, where the molecular packing frustration between the tightly packed zwitterionic moieties and the coiled alkyl chains demanding more space limits the lateral platelet growth controlled by the alkyl stretching entropy. An indirect proof is provided by the addition of plasticizing ionic liquids, which relieve the ionic dense packings of zwitterions, thus allowing purely smectic liquid crystallinity without the colloidal level order. Thus, molecules with a simple chemical structure can lead to structural hierarchy and tunable complexity in the solvent-free state by balancing the competing long-range electrostatics and short-range nanosegregations.
Original languageEnglish
Article number3c04914
JournalACS Omega
Volume8
Issue number42
Pages (from-to)39345–39353
Number of pages9
ISSN2470-1343
DOIs
Publication statusPublished - 24 Oct 2023
MoE publication typeA1 Journal article-refereed

Fields of Science

  • 114 Physical sciences
  • Thermotropic phase-behavior
  • Alkyl chains
  • Polymorphism
  • Long
  • Surfactants
  • Amphiphile
  • Length
  • Nano

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