Meng Wang, Hui Yang, Xiaosong Li, Xia Zhang, Huai Yang
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引用次数: 0
Abstract
Liquid crystal (LC) materials, with their supramolecular self-assembly nanostructures and stimulus-responsive properties, offer inherent advantages in the development of advanced intelligent functional materials. Among various LC phase, blue phase liquid crystals (BPs) are regarded as promising candidates for intelligent photonic crystals due to their unique 3D periodic nanostructures and the capability to selectively reflect circularly polarized light within the visible spectrum. Over the past decades, various methodologies are developed to synthesize BP materials with superior thermal stability, high-quality optical properties and excellent stimulus-responsibility, yielding significant research outcomes in the design and application of visual functional devices. Herein, this review summarizes the recent advancements in BPLCs. It comprehensively covers the structural characteristics and preparation methods of BP photonic crystals, detailing significant research findings in their optical, electrical, mechanical, and humidity-responsive properties, as well as their pivotal applications in sensors, optical devices, stimulus response, and anti-counterfeiting devices. Finally, the challenges and prospective development directions of this novel soft matter intelligent material are discussed. It is anticipated that this review will provide valuable insights for scientists and engineers in interdisciplinary fields, including materials science, photonics, chemistry, and physics, facilitating the fabrication of advanced functional soft materials.
液晶(LC)材料具有超分子自组装纳米结构和刺激响应特性,在开发先进的智能功能材料方面具有先天优势。在各种液晶相中,蓝相液晶(BPs)因其独特的三维周期性纳米结构和在可见光谱范围内选择性反射圆偏振光的能力,被视为智能光子晶体的理想候选材料。在过去的几十年中,人们开发了各种方法合成具有优异热稳定性、高质量光学特性和出色刺激响应性的 BP 材料,在视觉功能器件的设计和应用方面取得了重大研究成果。本综述总结了 BPLC 的最新进展。综述全面介绍了 BP 光子晶体的结构特征和制备方法,详细介绍了其在光学、电学、机械和湿度响应特性方面的重要研究成果,以及其在传感器、光学器件、刺激响应和防伪器件方面的关键应用。最后,还讨论了这种新型软物质智能材料所面临的挑战和未来的发展方向。预计这篇综述将为材料科学、光子学、化学和物理学等跨学科领域的科学家和工程师提供有价值的见解,促进先进功能软材料的制造。
期刊介绍:
Advanced Optical Materials, part of the esteemed Advanced portfolio, is a unique materials science journal concentrating on all facets of light-matter interactions. For over a decade, it has been the preferred optical materials journal for significant discoveries in photonics, plasmonics, metamaterials, and more. The Advanced portfolio from Wiley is a collection of globally respected, high-impact journals that disseminate the best science from established and emerging researchers, aiding them in fulfilling their mission and amplifying the reach of their scientific discoveries.