Incorporating Nanoparticles in Porous Foam Templating for Enhanced Sensitivity of Capacitive Pressure Sensors

Author:

Kurup Lekshmi A.123,Arthur Joshua N.123,Cole Cameron M.123,Suresh Sinduja345,Timm Jana6,Marschall Roland6,Yambem Soniya D.123ORCID

Affiliation:

1. School of Chemistry and Physics Faculty of Science Queensland University of Technology (QUT) 2 George Street Brisbane Queensland 4000 Australia

2. Centre for Materials Science Queensland University of Technology (QUT) 2 George Street Brisbane Queensland 4000 Australia

3. Centre for Biomedical Technologies Queensland University of Technology (QUT) 60 Musk Avenue, Kelvin Grove Brisbane Queensland 4059 Australia

4. ARC ITTC for Multiscale 3D Imaging Modelling and Manufacturing (M3D Innovation) 60 Musk Avenue, Kelvin Grove Brisbane Queensland 4059 Australia

5. School of Mechanical Medical and Process Engineering Faculty of Engineering Queensland University of Technology (QUT) 60 Musk Avenue, Kelvin Grove Brisbane Queensland 4059 Australia

6. Department of Chemistry Physical Chemistry III University of Bayreuth Universitaetsstrasse 30 95447 Bayreuth Germany

Abstract

AbstractCapacitive pressure sensors based on porous foams have been demonstrated for various biomedical applications (0–10 kPa). Many different methods for fabricating porous foams have been reported. In this work, for the first time, the incorporation of silica nanoparticles are reported into the templating process of porous foams fabricated through a combination of particle and emulsion templating, in order to enhance the formation of smaller microstructures in polydimethylsiloxane foams. The foams are coated with graphene, and pressure sensors developed using these foams showed increased sensitivity, up to 4.08 kPa−1. The incorporation of nanoparticles also improves the linearity of the sensitivity, giving a linear sensitivity for the pressure sensors over a pressure range of 0–6 kPa. Further, these pressure sensors have a low limit of detection of ≈13 Pa. These results indicate that incorporation of suitable nanoparticles in the templating of foams is a promising strategy for developing foam‐based pressure sensors with high and linear sensitivity.

Publisher

Wiley

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