Song Yaohao, Huang Xiang, Zhang Xinxin, Deng Minghui, Aya Satoshi, Huang Mingjun
South China Advanced Institute for Soft Matter Science and Technology, School of Emergent Soft Matter, South China University of Technology, Guangzhou, 510640, China.
Guangdong Provincial Key Laboratory of Functional and Intelligent Hybrid Materials and Devices, Guangdong Basic Research Center of Excellence for Energy and Information Polymer Materials, South China University of Technology, Guangzhou, 510640, China.
Adv Sci (Weinh). 2025 Mar;12(9):e2414317. doi: 10.1002/advs.202414317. Epub 2025 Jan 13.
High birefringence nematic liquid crystals are particularly demanded for adaptive optics applications in the infrared spectrum because it enable a thinner cell gap for achieving fast response time and improved diffraction efficiency. The emerging ferroelectric nematic liquid crystals have attracted widespread interest in soft matter due to their unique combination of ferroelectricity and fluidity. However, the birefringence, which is one of the most important optical parameters in electro-optic devices, is not large enough (<0.25) in most ferroelectric nematic materials. Here, a polar liquid crystal molecule library containing more than 60 molecules with a highly rigid and fluorinated nature is developed. The introduction of triple bonds constructs a long π-electron conjugated mesogen skeleton, significantly improving the birefringence of polar liquid crystal phases. The birefringence and dispersion properties are systematically studied, demonstrating a strong dependence on chemical structures and the type of polar phases. Furthermore, through multi-component mixing, polar liquid crystal mixtures with ultra-wide temperature range and excellent stability at or near room temperature are obtained. They possess much higher birefringence than the existing ferroelectric liquid crystal materials. The unique combination of high birefringence and fluidic ferroelectricity is expected to promote the application of polar liquid crystals in electro-optic technologies.
高双折射向列型液晶在红外光谱的自适应光学应用中特别受青睐,因为它能实现更薄的盒厚,从而获得快速响应时间并提高衍射效率。新兴的铁电向列型液晶因其铁电性和流动性的独特组合,在软物质领域引起了广泛关注。然而,双折射作为电光器件中最重要的光学参数之一,在大多数铁电向列型材料中不够大(<0.25)。在此,开发了一个包含60多个具有高度刚性和氟化性质的分子的极性液晶分子库。三键的引入构建了一个长的π电子共轭介晶骨架,显著提高了极性液晶相的双折射。系统研究了双折射和色散特性,表明其强烈依赖于化学结构和极性相的类型。此外,通过多组分混合,获得了在室温或接近室温下具有超宽温度范围和优异稳定性的极性液晶混合物。它们具有比现有铁电液晶材料高得多的双折射。高双折射和流体铁电性的独特组合有望推动极性液晶在电光技术中的应用。