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用于可穿戴双稳态电致变色织物的仿生固液转变结构染料掺杂液晶/相变材料微胶囊

Biomimetic Solid-Liquid Transition Structural Dye-Doped Liquid Crystal/Phase-Change-Material Microcapsules Designed for Wearable Bistable Electrochromic Fabric.

作者信息

Sheng Mingfei, Li Jingjing, Jiang Xiaojun, Wang Chengcheng, Li Jiashuang, Zhang Liping, Fu Shaohai

机构信息

Key Laboratory of Science & Technology of Eco-Textile, Jiangnan University, Ministry of Education, Wuxi, Jiangsu 214122, China.

The First Scientific Research Institute of Wuxi, Wuxi, Jiangsu 214122, China.

出版信息

ACS Appl Mater Interfaces. 2021 Jul 21;13(28):33282-33290. doi: 10.1021/acsami.1c08135. Epub 2021 Jul 6.

DOI:10.1021/acsami.1c08135
PMID:34227793
Abstract

A novel polymer microcapsule-filled dye-doped liquid crystal (DDLC) and phase-change material (PCM) system inspired by biological materials was first proposed, which was further encapsulated into a calcium alginate substrate by wet spinning for making an electrochromic fiber with both bistable electric-optical capability and knitting characteristics. Results show that the optical appearance of the optimized microcapsules and fiber can be reversibly changed between colored and colorless states according to the electric field by switching the DDLCs between isotropic (I) and anisotropic (A) states. Moreover, both I and A states can remain stable for more than 1 week after removing the electric field, due to the synergy of the greatly increased spatial hindrance of the PCM with core loading of 22.58% and the confinement effect from the polymer microcapsule shell material. Aside from the long-term optical stability, the high content of the densely packed DDLCs also endows the electrochromic fiber with a satisfactory driving voltage of 9.7 V, which is below the human safe voltage, showing great potential in a wide range of applications, such as flexible displays, energy-saving smart windows, and wearable advanced textiles.

摘要

首次提出了一种受生物材料启发的新型聚合物微胶囊填充染料掺杂液晶(DDLC)和相变材料(PCM)系统,通过湿法纺丝将其进一步封装到海藻酸钙基质中,以制备具有双稳态电光能力和编织特性的电致变色纤维。结果表明,通过在各向同性(I)和各向异性(A)状态之间切换DDLC,优化后的微胶囊和纤维的光学外观可根据电场在有色和无色状态之间可逆变化。此外,由于相变材料(PCM)的空间位阻大大增加(芯部负载为22.58%)与聚合物微胶囊壳材料的限制效应协同作用,在去除电场后,I态和A态均可保持稳定超过1周。除了长期光学稳定性外,密集排列的DDLC的高含量还赋予电致变色纤维9.7V的令人满意的驱动电压,该电压低于人体安全电压,在诸如柔性显示器、节能智能窗和可穿戴先进纺织品等广泛应用中显示出巨大潜力。

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