TY - JOUR
T1 - Leather-Based Strain Sensor with Hierarchical Structure for Motion Monitoring
AU - Xie, Ruijie
AU - Hou, Shanshan
AU - Chen, Yuanyuan
AU - Zhang, Kang
AU - Zou, Binghua
AU - Liu, Yihan
AU - Liang, Jiayuan
AU - Guo, Shaohua
AU - Li, Hongfeng
AU - Zheng, Bing
AU - Li, Sheng
AU - Zhang, Weina
AU - Wu, Jiansheng
AU - Huo, Fengwei
N1 - Publisher Copyright:
© 2019 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2019/10/1
Y1 - 2019/10/1
N2 - Flexible and wearable strain sensor has drawn a great deal of attention owing to its wide applications in health monitoring, human–machine interfaces, soft robotics, etc. Microstructural design on the conductive layer of strain sensor effectively improves its performance in linearity and hysteresis effect, yet the process of achieving microstructure is complicated. Leather, a kind of conventional flexible materials to manufacture clothes, shoes, etc., possesses natural hierarchical structure that consists of collagen fiber. Herein, leather is used as a substrate to fabricate a strain sensor by filtration of conductive nanomaterials aqueous dispersion. It is found that 0D conductive nanomaterials can be adsorbed in leather to form conductive pathway with leather-like microstructure. The as-prepared sensor with such microstructure not only inherits the air permeability, mechanical property, and biocompatibility from leather, but also displays linearity performance within three regions, low hysteresis effect, short response time, high stability, stretchability, as well as good durability. Kirigami is introduced to endow the leather-based sensor with stretchability. Such a sensor is applicable to human motion monitoring and shape perception of robotic arm.
AB - Flexible and wearable strain sensor has drawn a great deal of attention owing to its wide applications in health monitoring, human–machine interfaces, soft robotics, etc. Microstructural design on the conductive layer of strain sensor effectively improves its performance in linearity and hysteresis effect, yet the process of achieving microstructure is complicated. Leather, a kind of conventional flexible materials to manufacture clothes, shoes, etc., possesses natural hierarchical structure that consists of collagen fiber. Herein, leather is used as a substrate to fabricate a strain sensor by filtration of conductive nanomaterials aqueous dispersion. It is found that 0D conductive nanomaterials can be adsorbed in leather to form conductive pathway with leather-like microstructure. The as-prepared sensor with such microstructure not only inherits the air permeability, mechanical property, and biocompatibility from leather, but also displays linearity performance within three regions, low hysteresis effect, short response time, high stability, stretchability, as well as good durability. Kirigami is introduced to endow the leather-based sensor with stretchability. Such a sensor is applicable to human motion monitoring and shape perception of robotic arm.
KW - breathability
KW - durability
KW - flexible strain sensors
KW - leather
KW - natural hierarchical structure
UR - http://www.scopus.com/inward/record.url?scp=85071427021&partnerID=8YFLogxK
U2 - 10.1002/admt.201900442
DO - 10.1002/admt.201900442
M3 - 文章
AN - SCOPUS:85071427021
SN - 2365-709X
VL - 4
JO - Advanced Materials Technologies
JF - Advanced Materials Technologies
IS - 10
M1 - 1900442
ER -