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Updated: Nov 9, 2025

Production of a Strain-Measuring Device with an Improved 3D Printer
Published on: January 30, 2020
Printable G-Putty for Frequency- and Rate-Independent, High-Performance Strain Sensors
Daniel P O'Driscoll1, Sean McMahon1, James Garcia1
1School of Physics, CRANN & AMBER Research Centres, Trinity College Dublin, Dublin 2, Ireland.
Abstract:
While nanocomposite electromechanical sensors are expected to display reasonable conductivity and high sensitivity, little consideration is given to eliminating hysteresis and strain rate/frequency dependence from their response. For example, while G-putty, a composite of graphene and polysiloxane, has very high electromechanical sensitivity, its extreme viscoelasticity renders it completely unsuitable for real sensors due to hysteretic and rate-/frequency-dependent effects. Here it is shown that G-putty can be converted to an ink and printed into patterned thin films on elastic substrates. A partial graphene-polymer phase segregation during printing increases the thin-film conductivity by ×106 compared to bulk, while the mechanical effects of the substrate largely suppress hysteresis and completely remove strain rate and frequency dependence. This allows the fabrication of practical, high-gauge-factor, wearable sensors for pulse measurements as well as patterned sensors for low-signal vibration sensing.
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