Electro-Optic Response of Polymer-Stabilized Cholesteric Liquid Crystals with Different Polymer Concentrations

Author:

Saadaoui Lotfi12ORCID,Yang Donghao1,Hassan Faheem1,Qiu Ziyang1,Wang Yu1,Fan Yujie1,Drevensek-Olenik Irena34ORCID,Li Yigang1,Zhang Xinzheng15ORCID,Xu Jingjun1ORCID

Affiliation:

1. The MOE Key Laboratory of Weak-Light Nonlinear Photonics and International Sino-Slovenian Join Research Center on Liquid Crystal Photonics, TEDA Institute of Applied Physics and School of Physics, Nankai University, Tianjin 300457, China

2. Physics Laboratory of Soft Matter and Electromagnetic Modelling, Faculty of Sciences of Tunis, University of Tunis El Manar, El Manar Tunis 2092, Tunisia

3. Faculty of Mathematics and Physics, University of Ljubljana, SI-1000 Ljubljana, Slovenia

4. Department of Complex Matter, J. Stefan Institute, SI-1000 Ljubljana, Slovenia

5. Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan 030006, China

Abstract

Polymer-stabilized cholesteric liquid crystals (PSCLCs) have emerged as promising candidates for one-dimensional photonic lattices that enable precise tuning of the photonic band gap (PBG). This work systematically investigates the effect of polymer concentrations on the AC electric field-induced tuning of the PBG in PSCLCs, in so doing it explores a range of concentrations and provides new insights into how polymer concentration affects both the stabilization of cholesteric textures and the electro-optic response. We demonstrate that low polymer concentrations (≈3 wt. %) cause a blue shift in the short wavelength band edge, while high concentrations (≈10 wt. %) lead to a contraction and deterioration of the reflection band. Polarization optical microscopy was conducted to confirm the phase transition induced by the application of an electric field. The observations confirm that increased polymer concentration stabilizes the cholesteric texture. Particularly, the highly desired fingerprint texture was stabilized in a sample with 10 wt. % of the polymer, whereas it was unstable for lower polymer concentrations. Additionally, higher polymer concentrations also improved the dissymmetry factor and stability of the lasing emission, with the dissymmetry factor reaching the value of around 2 for samples with 10 wt. % of polymer additive. Our results provide valuable comprehension into the design of advanced PSCLC structures with tunable optical properties, enhancing device performance and paving the way for innovative photonic applications.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Key project of Tianjin Natural Science Foundation

111 Project

Fundamental Research Funds for the Central Universities, Nankai University

Slovenian Research Agency

Slovenian Research and Innovation Agency

Publisher

MDPI AG

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