致电离效应
全向天线
感知
运动(物理)
运动传感器
拉伤
纤维
计算机科学
计算机视觉
材料科学
心理学
医学
电信
复合材料
神经科学
解剖
受体
内科学
NMDA受体
天线(收音机)
作者
Jing Xing,Xiaojian Yi,Y. Z. Qu,Chenguang Yang,Wenwen Wang,Kun Yan,Dong Wang
出处
期刊:Soft science
[OAE Publishing Inc.]
日期:2025-07-29
卷期号:5 (3)
摘要
Conductive ultra-soft hydrogel-based wearable sensors, despite featuring multifunctional adaptability, still face inherent mechanical weaknesses and inadequate directional stress discernment. To address this challenge, we herein rationally designed a helical twisted alginate/agar/carbon nanotube triple-network composite gel fiber through a low-temperature-assisted wet-spinning technique coupled with cation crosslinking. The resulting gel fibers exhibit exceptional mechanoelectrical synergy, achieving conductivity up to 3.8 S/m while sustaining thousandfold self-weight loads via synergistic polymer entanglement and coordination interactions. The implemented helical architecture demonstrates enhanced strain responsivity (56%-130%, gauge factor), rapid response kinetics (< 0.5 s), and rate-agnostic stability in twisted fibers, enabling 360° spatiotemporal perception through three orthogonally coupled mechanisms: torsion-activated interfacial contact expansion, spiral topology-optimized charge transfer, and stress-dissipative dynamic microcavity formation based on the one-dimensional intrinsic uniaxial deformation amplification of gel fibers under multi-directional stresses. Practical validations include four-phase table tennis swing biomechanics analysis, proof-of-concept for handwriting training and motion correction systems, and motion-encoded encrypted communications, establishing a fundamental mechanistic framework for directional angle sensing with applications in assessment of adolescents’ daily activities. Ultimately, this breakthrough stems from the harmonization of helix-driven anisotropic sensitivity and triple-network viscoelastic dissipation, effectively resolving the longstanding compromise between directional acuity and mechanical durability in hydrogel-based sensors.
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