Self-encapsulated ionic fibers based on stress-induced adaptive phase transition for non-contact depth-of-field camouflage sensing

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作者
Ying Liu
Chan Wang
Zhuo Liu
Xuecheng Qu
Yansong Gai
Jiangtao Xue
Shengyu Chao
Jing Huang
Yuxiang Wu
Yusheng Li
Dan Luo
Zhou Li
机构
[1] Chinese Academy of Sciences,Beijing Institute of Nanoenergy and Nanosystems
[2] University of Chinese Academy of Sciences,School of Nanoscience and Engineering
[3] Beihang University,Key Laboratory of Biomechanics and Mechanobiology, Ministry of Education, Beijing Advanced Innovation Center for Biomedical Engineering, School of Engineering Medicine
[4] Beijing Institute of Technology,School of Life Science, Institute of Engineering Medicine
[5] Jianghan University,Department of Health and Kinesiology, School of Physical Education
[6] Xiangya Hospital,National Clinical Research Center for Geriatric Disorders
[7] Central South University,undefined
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摘要
Ionically conductive fibers have promising applications; however, complex processing techniques and poor stability limit their practicality. To overcome these challenges, we proposed a stress-induced adaptive phase transition strategy to conveniently fabricate self-encapsulated hydrogel-based ionically conductive fibers (se-HICFs). se-HICFs can be produced simply by directly stretching ionic hydrogels with ultra-stretchable networks (us-IHs) or by dip-drawing from molten us-IHs. During this process, stress facilitated the directional migration and evaporation of water molecules in us-IHs, causing a phase transition in the surface layer of ionic fibers to achieve self-encapsulation. The resulting sheath-core structure of se-HICFs enhanced mechanical strength and stability while endowing se-HICFs with powerful non-contact electrostatic induction capabilities. Mimicking nature, se-HICFs were woven into spider web structures and camouflaged in wild environments to achieve high spatiotemporal resolution 3D depth-of-field sensing for different moving media. This work opens up a convenient route to fabricate stable functionalized ionic fibers.
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  • [1] Self-encapsulated ionic fibers based on stress-induced adaptive phase transition for non-contact depth-of-field camouflage sensing
    Liu, Ying
    Wang, Chan
    Liu, Zhuo
    Qu, Xuecheng
    Gai, Yansong
    Xue, Jiangtao
    Chao, Shengyu
    Huang, Jing
    Wu, Yuxiang
    Li, Yusheng
    Luo, Dan
    Li, Zhou
    [J]. NATURE COMMUNICATIONS, 2024, 15 (01)