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1Department of Mechanical Engineering, Yokohama National University, 79-5 Tokiwadai, Hodogaya-ku, Yokohama, Kanagawa 240-8501, Japan.
APL Bioengineering
|February 7, 2023
Summary
This study developed a novel conductive rubber composite gel. The material demonstrates significant elasticity and a substantial decrease in electrical resistance, enabling its use as a switch in electronic circuits.
Area of Science:
- Materials Science
- Polymer Science
- Electrical Engineering
Background:
- Conductive rubber composites offer conductivity and elasticity for soft robots and wearable devices.
- Elongation typically increases electrical resistance in composites due to filler bond breakage.
- Optimizing filler shape and size can decrease resistance during elongation, but achieving low resistance and high elasticity simultaneously is challenging.
Purpose of the Study:
- To develop a conductive rubber composite gel with both high elasticity and significantly reduced electrical resistance.
- To overcome the trade-off between filler content, elasticity, and resistance reduction in conductive composites.
- To demonstrate the potential application of the developed composite as a switch in electric circuits.
Main Methods:
- A conductive rubber composite gel was synthesized by combining silicone rubber, ionic liquid, and metal filler.
- The composite's electrical resistance and elasticity were characterized under varying elongation conditions.
- The material's performance was evaluated as a switch in a direct current (DC) power source circuit.
Main Results:
- The developed composite achieved an elongation rate exceeding six times its original length.
- A remarkable decrease in electrical resistance, less than 1/10^5, was observed during elongation.
- The composite successfully functioned as a switch, controlling an electric circuit based on elongation.
Conclusions:
- The novel conductive rubber composite gel successfully balances high elasticity with a significant reduction in electrical resistance.
- This material presents a promising solution for applications requiring stretchable electronics and efficient switching mechanisms.
- The developed composite is suitable for use in electric circuits, particularly as an elongation-responsive switch.

