4.8 Article

Charge Transportation and Chirality in Liquid Crystalline Helical Network Phases of Achiral BTBT-Derived Polycatenar Molecules

Journal

ADVANCED FUNCTIONAL MATERIALS
Volume 31, Issue 28, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.202102271

Keywords

[1]benzothieno[3; 2‐ b]benzothiophenes; bicontinuous cubic phases; charge transportation; chirality; liquid crystals; mirror symmetry breaking; polycatenar mesogens

Funding

  1. European Union (EFRE)
  2. National Natural Science Foundation of China [21761132033, 21374086]
  3. National Research Foundation (NRF) of Korea - Korean Government (MSIT) [2019K1A3A1A14065772]
  4. Projekt DEAL

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The study focuses on the design, synthesis, and investigation of multichain compounds based on pi-conjugated structures. The compounds exhibit unique liquid crystalline phases with varying network structures at different chain lengths, showcasing enhanced charge carrier mobility and non-dispersive charge transportation.
First examples of multichain (polycatenar) compounds, based on the pi-conjugated [1]benzothieno[3,2-b]benzothiophene unit are designed, synthesized, and their soft self-assembly and charge carrier mobility are investigated. These compounds, terminated by the new fan-shaped 2-brominated 3,4,5-trialkoxybenzoate moiety, form bicontinuous cubic liquid crystalline (LC) phases with helical network structure over extremely wide temperature ranges (>200 K), including ambient temperature. Compounds with short chains show an achiral cubic phase with the double network, which upon increasing the chain length, is at first replaced by a tetragonal 3D phase and then by a mirror symmetry is broken triple network cubic phase. In the networks, the capability of bypassing defects provides enhanced charge carrier mobility compared to imperfectly aligned columnar phases, and the charge transportation is non-dispersive, as only rarely observed for LC materials. At the transition to a semicrystalline helical network phase, the conductivity is further enhanced by almost one order of magnitude. In addition, a mirror symmetry broken isotropic liquid phase is formed beside the 3D phases, which upon chain elongation is removed and replaced by a hexagonal columnar LC phase.

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