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Phytic Acid-Enhanced Superstretched, Self-Adhesive, Antifreeze Conductive Hydrogels for Motion Monitoring and Human–Computer Interaction

植酸 防冻剂 胶粘剂 自愈水凝胶 自粘 抗冻蛋白 材料科学 化学 纳米技术 高分子化学 生物化学 有机化学 图层(电子)
作者
Yuerui Li,Min Guo,Yifei Gao,Chunxia Zhao,Jialin Liao,Yuxing Li,Jinbo Cheng,Hui Li,Dong Xiang,Haoran Huang,Yuanpeng Wu
出处
期刊:ACS applied polymer materials [American Chemical Society]
卷期号:7 (11): 7395-7406 被引量:11
标识
DOI:10.1021/acsapm.5c00963
摘要

Hydrogels have become an important material in the field of wearable flexible electronics owing to their excellent flexibility and adjustable conductivity. However, due to the large amount of free water contained within the hydrogel, it freezes in low-temperature environments, resulting in poor conductivity and mechanical properties. In this study, an ionically conductive hydrogel was developed by introducing phytic acid (PA), a biomass-based antifreezing material. The addition of PA improved the mechanical, adhesion, and electrical properties, as well as the frost resistance of the hydrogel. The PAM/PVA 0.15 /Gelatin 0.02 /PA 4 hydrogel prepared in this study exhibited an ultrahigh tensile strain (3083%), excellent adhesion (with adhesion strength to pig skin up to 448.45 kPa), and high conductivity (10.07 S m –1 ). At the same time, PA endowed the hydrogel with good frost resistance and long-term environmental stability. The hydrogel could remain soft even at −20 °C, as well as retain good electrical properties. In addition, an integrated hydrogel sensor exhibited a wide strain response range (1–1000%), excellent stability, and high sensitivity. Moreover, hydrogel sensors were also successfully used for motion and pipeline flow rate monitoring, as well as simple human–computer interaction applications.
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