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Noninvasive material thickness detection by aerosol jet printed sensors enhanced through metallic carbon nanotube ink

Publication ,  Journal Article
Andrews, JB; Cao, C; Brooke, MA; Franklin, AD
Published in: IEEE Sensors Journal
July 15, 2017

Demand for cheaper and more functional sensors continues to rise in an era when data can be used to improve health, safety, and efficiency in daily lives. In this paper, we present a fully printed sensor capable of noninvasive material thickness detection. By applying an oscillating signal between two millimeter-scale electrodes, the fringing electric field is measurably perturbed by a material placed directly on top of the electrodes, leading to a linearly varying capacitance with change in the material's thickness. We simulate this electric field perturbation and experimentally demonstrate the linear correlation between capacitance and overlying material thickness. Various parameters, from sensor size and structure to substrate and ink materials, are studied to optimize the performance of the printed sensors. Sensors made of metallic carbon nano-tube ink yield the best sensitivity, exhibiting a capacitance change of 26 fF per mm thickness of rubber-ten times more sensitive than devices composed of silver nanoparticle ink. Finally, we demonstrate an effective application of the sensors in automobile tires. By applying the sensors directly beneath the tread (within the tire), mm changes in the tread depth are able to be detected in a 99% confidence interval. These findings provide a straightforward, low-cost approach for monitoring mm changes in material thickness using noninvasive, printed sensors applicable to innumerable Internet-of-Things (IoT) applications.

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Published In

IEEE Sensors Journal

DOI

ISSN

1530-437X

Publication Date

July 15, 2017

Volume

17

Issue

14

Start / End Page

4612 / 4618

Related Subject Headings

  • Analytical Chemistry
  • 40 Engineering
  • 0913 Mechanical Engineering
  • 0906 Electrical and Electronic Engineering
  • 0205 Optical Physics
 

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Andrews, J. B., Cao, C., Brooke, M. A., & Franklin, A. D. (2017). Noninvasive material thickness detection by aerosol jet printed sensors enhanced through metallic carbon nanotube ink. IEEE Sensors Journal, 17(14), 4612–4618. https://doi.org/10.1109/JSEN.2017.2710085
Andrews, J. B., C. Cao, M. A. Brooke, and A. D. Franklin. “Noninvasive material thickness detection by aerosol jet printed sensors enhanced through metallic carbon nanotube ink.” IEEE Sensors Journal 17, no. 14 (July 15, 2017): 4612–18. https://doi.org/10.1109/JSEN.2017.2710085.
Andrews JB, Cao C, Brooke MA, Franklin AD. Noninvasive material thickness detection by aerosol jet printed sensors enhanced through metallic carbon nanotube ink. IEEE Sensors Journal. 2017 Jul 15;17(14):4612–8.
Andrews, J. B., et al. “Noninvasive material thickness detection by aerosol jet printed sensors enhanced through metallic carbon nanotube ink.” IEEE Sensors Journal, vol. 17, no. 14, July 2017, pp. 4612–18. Scopus, doi:10.1109/JSEN.2017.2710085.
Andrews JB, Cao C, Brooke MA, Franklin AD. Noninvasive material thickness detection by aerosol jet printed sensors enhanced through metallic carbon nanotube ink. IEEE Sensors Journal. 2017 Jul 15;17(14):4612–4618.

Published In

IEEE Sensors Journal

DOI

ISSN

1530-437X

Publication Date

July 15, 2017

Volume

17

Issue

14

Start / End Page

4612 / 4618

Related Subject Headings

  • Analytical Chemistry
  • 40 Engineering
  • 0913 Mechanical Engineering
  • 0906 Electrical and Electronic Engineering
  • 0205 Optical Physics