材料科学
压阻效应
碳纳米管
弯曲
标度系数
微尺度化学
弯曲半径
复合材料
复合数
极限抗拉强度
纳米技术
纳米材料
压力(语言学)
光电子学
制作
替代医学
病理
数学教育
哲学
医学
语言学
数学
作者
Kahyun Sun,Hangil Ko,Hyun‐Ha Park,Minho Seong,Sang‐Hyeon Lee,Hoon Yi,Hyung Wook Park,Tae‐il Kim,Changhyun Pang,Hoon Eui Jeong
出处
期刊:Small
[Wiley]
日期:2018-11-11
卷期号:14 (52)
被引量:61
标识
DOI:10.1002/smll.201803411
摘要
Abstract Low‐dimensional nanomaterials are widely adopted as active sensing elements for electronic skins. When the nanomaterials are integrated with microscale architectures, the performance of the electronic skin is significantly altered. Here, it is shown that a high‐performance flexible and stretchable electronic skin can be produced by incorporating a piezoresistive carbon nanotube composite into a hierarchical topography of micropillar–wrinkle hybrid architectures that mimic wrinkles and folds in human skin. Owing to the unique hierarchical topography of the hybrid architectures, the hybrid electronic skin exhibits versatile and superior sensing performance, which includes multiaxial force detection (normal, bending, and tensile stresses), remarkable sensitivity (20.9 kPa −1 , 17.7 mm −1 , and gauge factor of 707 each for normal, bending, and tensile stresses), ultrabroad sensing range (normal stress = 0–270 kPa, bending radius of curvature = 1–6.5 mm, and tensile strain = 0–50%), sensing tunability, fast response time (24 ms), and high durability (>10 000 cycles). Measurements of spatial distributions of diverse mechanical stimuli are also demonstrated with the multipixel electronic skin. The stress–strain behavior of the hybrid structure is investigated by finite element analysis to elucidate the underlying principle of the superior sensing performance of the electronic skin.
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