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Department of Robotics and Mechatronics Engineering
Multiscale Biomedical Robotics Laboratory
1. Journal Articles
High-performance electro-responsive ionic soft actuators based on polypyrrole coated functional carboxylated bacterial cellulose nanofibers for bioinspired applications
Wang, Fan
;
Xu, Guanzheng
;
Shen, Wenhao
;
Park, Sukho
;
Li, Qinchuan
Department of Robotics and Mechatronics Engineering
Multiscale Biomedical Robotics Laboratory
1. Journal Articles
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Title
High-performance electro-responsive ionic soft actuators based on polypyrrole coated functional carboxylated bacterial cellulose nanofibers for bioinspired applications
Issued Date
2023-12
Citation
Wang, Fan. (2023-12). High-performance electro-responsive ionic soft actuators based on polypyrrole coated functional carboxylated bacterial cellulose nanofibers for bioinspired applications. Sensors and Actuators A: Physical, 363. doi: 10.1016/j.sna.2023.114734
Type
Article
Author Keywords
Ionic actuator
;
Polymerization
;
Nanocomposites
;
Polypyrrole
;
Bioinspired applications
ISSN
0924-4247
Abstract
Low voltage high-performance soft actuators have attracted great attention in flexible haptic displays, soft robots, biomedical devices, and braille displays. Herein, we report a low voltage ionic soft actuator based on carboxylated bacterial cellulose (CBC) nanofibers, ionic liquid (IL), and polypyrrole (PPy) electrodes. The highly conductive PPy nanoparticles were homogeneously coated on the CBC-IL membrane surfaces by using a chemical polymerization method, because the carboxylated groups on CBC could enhance the adsorption of PPy nanoparticles. The proposed CBC-IL-PPy actuator displayed a peak-to-peak displacement of 11.66 mm and long working durability (97 % retention after 2 h) under a sinusoidal voltage of 2.0 V at 0.1 Hz, and wide actuation frequency. The enhanced actuation performances of the actuator were due to its increased specific capacitance, ionic conductivity, and ionic exchange capacity. Furthermore, the bioinspired applications of the actuators were successfully demonstrated such as soft robot touch finger, bionic active stent, grapple robot, and bionic wing. Thus, the proposed low voltage high-performance soft actuator will advance artificial muscles, soft robots, robotic interactions, biomedical active devices, and flexible haptic devices. © 2023 Elsevier B.V.
URI
http://hdl.handle.net/20.500.11750/46495
DOI
10.1016/j.sna.2023.114734
Publisher
Elsevier
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Park, Sukho
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Department of Robotics and Mechatronics Engineering
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