Highly sensitive capacitive pressure sensors for robotic applications based on carbon nanotubes and PDMS polymer nanocomposite
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Published:2019-02-08
Issue:1
Volume:8
Page:87-94
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ISSN:2194-878X
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Container-title:Journal of Sensors and Sensor Systems
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language:en
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Short-container-title:J. Sens. Sens. Syst.
Author:
Ramalingame Rajarajan,Lakshmanan Amoog,Müller Florian,Thomas Ulrike,Kanoun Olfa
Abstract
Abstract. Flexible tactile pressure
sensor arrays based on multiwalled carbon nanotubes (MWCNT) and
polydimethylsiloxane (PDMS) are gaining importance, especially in the field
of robotics because of the high demand for stable, flexible and sensitive
sensors. Some existing concepts of pressure sensors based on nanocomposites
exhibit complicated fabrication techniques and better sensitivity than the
conventional pressure sensors. In this article, we propose a
nanocomposite-based pressure sensor that exhibits a high sensitivity of
25 % N−1, starting with a minimum
load range of 0–0.01 N and 46.8 % N−1 in the range of 0–1 N.
The maximum pressure sensing range of the sensor is approximately 570 kPa. A
concept of a 4×3
tactile sensor array, which could be integrated to robot fingers, is
demonstrated. The high sensitivity of the pressure sensor enables precision
grasping, with the ability to sense small objects with a size of 5 mm and a
weight of 1 g. Another application of the pressure sensor is demonstrated as
a gait analysis for humanoid robots. The pressure sensor is integrated under
the foot of a humanoid robot to monitor and evaluate the gait of the robot,
which provides insights for optimizing the robot's self-balancing algorithm
in order to maintain the posture while walking.
Publisher
Copernicus GmbH
Subject
Electrical and Electronic Engineering,Instrumentation
Reference20 articles.
1. Cao, Y., Li, T., Gu, Y., Luo, H., Wang, S., and Zhang, T.: Fingerprint-inspired flexible tactile sensor for accurately discerning surface texture, Small, 14, 1703902, https://doi.org/10.1002/smll.201703902, 2018. a 2. Chen, L., Liu, J., Wang, X., Ji, B., Chen, X., and Yang, B.: Flexible capacitive hydrogel tactile sensor with adjustable measurement range using liquid crystal and carbon nanotubes composites, IEEE T. Electron Dev., 64, 1968–1972, https://doi.org/10.1109/TED.2017.2682099, 2017. a 3. Cui, J., Zhang, B., Duan, J., Guo, H., Tang, J., Cui, J., Zhang, B., Duan, J., Guo, H., and Tang, J.: Flexible pressure sensor with ag wrinkled electrodes based on PDMS substrate, Sensors, 16, 2131, https://doi.org/10.3390/s16122131, 2016. a, b 4. Dinh, T., Nguyen, T., Phan, H., Fastier-Wooller, J., Tran, C., Nguyen, N., and Dao, D. V.: Electrical Resistance of Carbon Nanotube Yarns Under Compressive Transverse Pressure, IEEE ELECTR DEVICE L, 39, 584–587, https://doi.org/10.1109/LED.2018.2806181, 2018. a 5. Emon, M., Choi, J.-W., Emon, M. O. F., and Choi, J.-W.: Flexible piezoresistive sensors embedded in 3d printed tires, Sensors, 17, 656, https://doi.org/10.3390/s17030656, 2017. a
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