偶极子
软物质
磁场
电阻抗
材料科学
磁偶极子
计算机科学
凝聚态物理
核磁共振
纳米技术
机械工程
声学
物理
电气工程
化学
工程类
胶体
量子力学
物理化学
作者
Guorui Chen,Xun Zhao,Sahar Andalib,Jing Xu,Yihao Zhou,Trinny Tat,Ke Lin,Jun Chen
出处
期刊:Matter
[Elsevier]
日期:2021-11-01
卷期号:4 (11): 3725-3740
被引量:110
标识
DOI:10.1016/j.matt.2021.09.012
摘要
We discovered a giant magnetoelasticity in soft matter with up to 5-fold enhancement of magnetomechanical coupling factors compared to that of rigid metal alloys without an externally applied magnetic field. A wavy chain analytical model based on the magnetic dipole-dipole interaction and demagnetizing field was established, fitting well to the experimental observation. To explore its potentials in electronic textiles, we coupled it with magnetic induction to invent a textile magnetoelastic generator (MEG), a new working mechanism for biomechanical energy conversion, featuring an intrinsic waterproofness, an ultralow internal impedance of approximately 20 Ω, and a high short-circuit current density of 1.37 mA/cm2, which is about four orders of magnitude higher than that of other textile generator counterparts. Meanwhile, assisted by machine learning, the textile MEG could continuously monitor the respiratory activities on heavily perspiring skin without any encapsulation, allowing a timely diagnosis of the respiration abnormalities in a self-powered manner. We foresee that this discovery can be extended to wide-range soft-matter systems, emerging as a compelling approach to develop electronic textiles for energy, sensing, and therapeutic applications.
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