4.6 Article

Preparation and thermo-optical characteristics of a smart polymer-stabilized liquid crystal thin film based on smectic A-chiral nematic phase transition

Journal

SMART MATERIALS AND STRUCTURES
Volume 23, Issue 12, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/0964-1726/23/12/125038

Keywords

smart materials; polymer-stabilized liquid crystal; smectic A phase; chiral nematic phase; parallel polymer network; thermo-optical characteristics

Funding

  1. Sino-American Cooperative Project of Chinese Ministry of Science and Technology [2013DFB50340]
  2. Major Project of Beijing Science & Technology Program [Z121100006512002]
  3. Major Program of Chinese Ministry of Education [51203011, 51272026, 51273022]
  4. National Natural Science Foundation [51203011, 51272026, 51273022]
  5. Fundamental Research Funds for the Central Universities [FRF-TP-14-001A2]
  6. Project of Guiyang Science & Technology Program [[2012205]6-1]

Ask authors/readers for more resources

A smart polymer stabilized liquid crystal (PSLC) thin film with temperature-controllable light transmittance was prepared based on a smectic-A (SmA)-chiral nematic (N*) phase transition, and then the effect of the composition and the preparation condition of the PSLC film on its thermo-optical (T-O) characteristics has been investigated in detail. Within the temperature range of the SmA phase, the PSLC shows a strong opaque state due to the focal conic alignment of liquid crystal (LC) molecules, while the film exhibits a transparent state result from the parallel alignment of N* phase LC molecules at a higher temperature. Importantly, the PSLC films with different temperature of phase transition and contrast ratio can be prepared by changing the composition of photo-polymerizable monomer/LC/chiral dopant. According to the competition between the polymerization of the curable monomers and the diffusion of LC molecules, the ultraviolet (UV) curing surrounding temperature and the intensity of UV irradiation play a critical role in tuning the size of the polymer network meshes, which in turn influence the contrast ratio and the switching speed of the film. Our observations are expected to pave the way for preparing smart PSLC thin films for applications in areas of smart windows, thermo-detectors and other information recording devices.

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