

FOLLOWUS
a.College of Textile and Clothing Engineering, Soochow University, Suzhou 215123, China
b.National Engineering Laboratory for Modern Silk, Suzhou 215123, China
yantao@suda.edu.cn (T.Y.)
zhjpan@suda.edu.cn (Z.J.P)
Received:07 November 2022,
Revised:2022-12-6,
Accepted:07 December 2022,
Online First:10 February 2023,
Published:01 August 2023
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Ma, S. D.; Wu, Y. T.; Tang, J.; Zhang, Y. M.; Yan, T.; Pan, Z. J. A multi-model, large-range flexible strain sensor based on carbonized silk habotai for human health monitoring. Chinese J. Polym. Sci. 2023, 41, 1238–1249
Shi-Dong Ma, Yu-Ting Wu, Jian Tang, et al. A Multi-model, Large-range Flexible Strain Sensor Based on Carbonized Silk Habotai for Human Health Monitoring[J]. Chinese Journal of Polymer Science, 2023, 41(8): 1238-1249.
Ma, S. D.; Wu, Y. T.; Tang, J.; Zhang, Y. M.; Yan, T.; Pan, Z. J. A multi-model, large-range flexible strain sensor based on carbonized silk habotai for human health monitoring. Chinese J. Polym. Sci. 2023, 41, 1238–1249 DOI: 10.1007/s10118-023-2924-4.
Shi-Dong Ma, Yu-Ting Wu, Jian Tang, et al. A Multi-model, Large-range Flexible Strain Sensor Based on Carbonized Silk Habotai for Human Health Monitoring[J]. Chinese Journal of Polymer Science, 2023, 41(8): 1238-1249. DOI: 10.1007/s10118-023-2924-4.
In recent years
flexible strain sensors have received considerable attention owing to their excellent flexibility and multifunctionality. However
it is still a great challenge for them to accurately monitor multi-model deformations with high sensitivity and linearity. In this study
the industrial insulating silk habotai was successfully converted into carbonized silk habotai (CSH) for use in strain sensors. A strain sensor created using CSH exhibited excellent sensing performance under multi-model deformations
including stretching
twist and bending. The maximum tensile strain was 434%. The gauge factors were 14.6 in the wide tensile range of 0%–400% with a high linearity of 0.959. In addition
the CSH strain sensor exhibited an extremely fast response time (110 ms) and could accurately detect bending (0°–180°) and torsional (0°–180°) strains. High durability and repeatability were observed for the multi-model strains. Finally
a new type of smart pillow was developed to accurately record head movement and breathing during sleep. The sensor may also be used for auxiliary training in table tennis. The proposed CSH strain sensor has shown great potential for applications in smart devices and human-machine interactions.
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