AI Article Synopsis

  • Stretchable strain sensors made from conductive elastomers show great potential for wearable electronics but often face issues like low accuracy and high hysteresis.
  • A new design involving a three-dimensional crack conductive network improves the sensor's performance by enhancing its sensitivity and reducing hysteresis to about 2.9%.
  • This innovative approach is versatile, working with various types of conductive fillers, and significantly boosts the reliability and accuracy of these sensors, making them promising for use in e-skin and soft robotics.

Article Abstract

Stretchable flexible strain sensors based on conductive elastomers are rapidly emerging as a highly promising candidate for popular wearable flexible electronic and soft-mechanical sensing devices. However, due to the intrinsic limitations of low fidelity and high hysteresis, existing flexible strain sensors are unable to exploit their full application potential. Herein, a design strategy for a successive three-dimensional crack conductive network is proposed to cope with the uncoordinated variation of the output resistance signal arising from the conductive elastomer. The electrical characteristics of the sensor are dominated by the successive crack conductive network through a greater resistance variation and a concise sensing mechanism. As a result, the developed elastomer bionic strain sensors exhibit excellent sensing performance in terms of a smaller overshoot response, a lower hysteresis (∼2.9%), and an ultralow detection limit (0.00179%). What's more, the proposed strategy is universal and applicable to many conductive elastomers with different conductive fillers (including 0-D, 1-D, and 2-D conductive fillers). This approach improves the sensing signal accuracy and reliability of conductive elastomer strain sensors and holds promising potential for various applications in the fields of e-skin and soft robotic systems.

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Source
http://dx.doi.org/10.1021/acsnano.3c11711DOI Listing

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