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Bending Sensor Based on Controlled Microcracking Regions for Application toward Wearable Electronics and Robotics

Authors
Lee, Do HoonYang, Jun ChangSim, Joo YongKang, HeeminKim, Hyung-RyongPark, Steve
Issue Date
Jul-2022
Publisher
AMER CHEMICAL SOC
Keywords
bending sensor; inverse pyramid; healthcare monitoring; tactile object recognition; soft robotics
Citation
ACS APPLIED MATERIALS & INTERFACES, v.14, no.27, pp 31312 - 31320
Pages
9
Journal Title
ACS APPLIED MATERIALS & INTERFACES
Volume
14
Number
27
Start Page
31312
End Page
31320
URI
https://scholarworks.sookmyung.ac.kr/handle/2020.sw.sookmyung/152624
DOI
10.1021/acsami.2c07795
ISSN
1944-8244
1944-8252
Abstract
A soft bending sensor based on the inverse pyramid structure is demonstrated, revealing that it can effectively suppress microcrack formation in designated regions, thus allowing the cracks to open gradually with bending in a controlled manner. Such a feature enabled the bending sensor to simultaneously have a wide dynamic range of bending strain (0.025-5.4%), high gauge factor (~74), and high linearity (R-2 ~ 0.99). Furthermore, the bending sensor can capture repeated instantaneous changes in strain and various types of vibrations, owing to its fast response time. Moreover, the bending direction can be differentiated with a single layer of the sensor, and using an array of sensors integrated on a glove, object recognition was demonstrated via machine learning. Finally, a self-monitoring proprioceptive ionic electroactive polymer (IEAP) actuator capable of operating in liquid was demonstrated. Such features of our bending sensor will enable a simple and effective way of detecting sophisticated motion, thus potentially advancing wearable healthcare monitoring electronics and enabling proprioceptive soft robotics.
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