4.8 Article

Facile Stratification-Enabled Emergent Hyper-Reflectivity in Cholesteric Liquid Crystals

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 14, Issue 51, Pages 57235-57243

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.2c16938

Keywords

photopolymerization-enforced stratification; phase separation; hyper-reflectivity; cholesteric liquid crystals; chiral dopant bundle

Funding

  1. National Key R&D Program of China [2020YFE0100200]
  2. Science and Technology Program of Guangzhou [2019050001]
  3. Special Projects in Key Areas of Guangdong Provincial Department of Education [2020ZDZX2064]
  4. Program for Chang Jiang Scholars and Innovative Research Teams in Universities [IRT_17R40]
  5. Guangdong Provincial Key Laboratory of Optical Information Materials and Technology [2017B030301007]
  6. Industry University-Research Cooperation Project of Zhuhai City [ZH22017001200043PWC]
  7. MOE International Laboratory for Optical Information Technologies
  8. 111 Project
  9. Yunnan expert workstation [202005AF150028]

Ask authors/readers for more resources

This paper introduces a novel method for helix engineering in chiral cholesteric liquid crystals (CLCs) using photopolymerization-enforced stratification (PES). The PES-based strategy successfully creates a CLC bilayer structure that reflects both left- and right-handed circularly polarized light (CPL). The engineered hyper-reflective CLCs offer advantages such as the ability to program the center wavelength of hyper-reflection, patterning, and stimuli-responsiveness.
Cholesteric liquid crystals (CLCs) are chiral photonic materials with selective reflection in terms of wavelength and polarization. Helix engineering is often required in order to produce desired properties for CLC materials to be employed for beam steering, light diffraction, scattering, and adaptive or broadband reflection. Here, we demonstrate a novel photopolymerization-enforced stratification (PES)- based strategy to realize helix engineering in a chiral CLC system with initially one handedness of molecular rotation throughout the layer. PES plays a crucial role in driving the chiral dopant bundle consisting of two chiral dopants of opposite handedness to spontaneously phase separate and create a CLC bilayer structure that reflects left- and right-handed circularly polarized light (CPL). The initially hidden chiral information therefore becomes explicit, and hyper-reflectivity, i.e., reflecting both left- and right-handed CPL, successfully emerges from the designed CLC mixture. The PES mechanism can be applied to structure a wide range of liquid crystal (LC) and polymer materials. Moreover, the engineering strategy enables facile programming of the center wavelength of hyper-reflection, patterning, and incorporating stimuli-responsiveness in the optical device. Hence, the engineered hyper-reflective CLCs offer great promise for future applications, such as digital displays, lasing, optical storage, and smart windows.

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