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基于柔性计算机数控的手性向列相薄膜材料的最新进展。

Recent Advances in Flexible CNC-Based Chiral Nematic Film Materials.

作者信息

Zou Xuyang, Xue Rui, An Zewei, Li Hongwei, Zhang Jiale, Jiang Yan, Huang Lijie, Wu Wei, Wang Shuangfei, Hu Guo-Hua, Li Robert K Y, Zhao Hui

机构信息

School of Light Industry and Food Engineering, Guangxi University, Nanning, 530004, China.

Jihua Laboratory, Foshan, 528200, China.

出版信息

Small. 2024 Feb;20(5):e2303778. doi: 10.1002/smll.202303778. Epub 2023 Sep 26.

Abstract

Cellulose nanocrystal (CNC) is a renewable resource derived from lignocellulosic materials, known for its optical permeability, biocompatibility, and unique self-assembly properties. Recent years have seen great progresses in cellulose nanocrystal-based chiral photonic materials. However, due to its inherent brittleness, cellulose nanocrystal shows limitations in the fields of flexible materials, optical sensors and food freshness testing. In order to solve the above limitations, attempts have been made to improve the flexibility of cellulose nanocrystal materials without destroying their structural color. Despite these progresses, a systematic review on them is lacking. This review aims to fill this gap by providing an overview of the main strategies and the latest research findings on the flexibilization of cellulose nanocrystal-based chiral nematic film materials (FCNM). Specifically, typical substances and methods used for their preparation are summarized. Moreover, different kinds of cellulose nanocrystal-based composites are compared in terms of flexibility. Finally, potential applications and future challenges of flexible cellulose nanocrystal-based chiral nematic materials are discussed, inspiring further research in this field.

摘要

纤维素纳米晶体(CNC)是一种源自木质纤维素材料的可再生资源,以其光学渗透性、生物相容性和独特的自组装特性而闻名。近年来,基于纤维素纳米晶体的手性光子材料取得了巨大进展。然而,由于其固有的脆性,纤维素纳米晶体在柔性材料、光学传感器和食品新鲜度检测等领域存在局限性。为了解决上述局限性,人们尝试在不破坏其结构颜色的情况下提高纤维素纳米晶体材料的柔韧性。尽管取得了这些进展,但缺乏对它们的系统综述。本综述旨在通过概述基于纤维素纳米晶体的手性向列相薄膜材料(FCNM)柔韧性化的主要策略和最新研究成果来填补这一空白。具体而言,总结了用于其制备的典型物质和方法。此外,还比较了不同种类的基于纤维素纳米晶体的复合材料在柔韧性方面的差异。最后,讨论了柔性纤维素纳米晶体基手性向列相材料的潜在应用和未来挑战,以激发该领域的进一步研究。

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