CLEAR | Conducting Liquid crystal Elastomer ActuatoRs

Summary
The overall goal of this cross-disciplinary project is to combine stretchable electronics with soft robotics in order to build up a novel materials platform that possesses multifunctional electronic control, sensing, and signaling coupled with actuation in response to environmental stimuli, such as electricity, heat, and light. In recent years the transformation of electronics into soft and stretchable organic systems has opened up a wide range of novel applications, including healthcare monitoring with ultrathin skin-like flexible devices, whereas actuators composed of soft active materials possess characteristics for microrobotics that are nearly impossible to achieve with conventional rigid systems, most notably mechanical compatibility with biological tissue. In this project interpenetrating conducting polymer networks will be fabricated in an actuator composed of a liquid crystal elastomer, a class of materials that has undergone rapid development within the past decade and is considered one of the best candidates for microscale soft robotics. The stimuli-response of the actuator brings about possibilities towards autonomous action, where it can sense the environment and act accordingly, representing multifunctional materials where the matrix has an active role in functionality. The unique combination of properties and functionalities promises coupled sensing and actuation that could have a transformative impact on the use of liquid crystal elastomers in soft matter applications. I envision that the conducting actuators have future applications as wearable sensors for heart rate detection and electrical nerve stimulation, with the reversible shape change enabling them to smoothly envelop around the target tissue.
Unfold all
/
Fold all
More information & hyperlinks
Web resources: https://cordis.europa.eu/project/id/101022777
Start date: 01-01-2022
End date: 27-08-2026
Total budget - Public funding: 202 680,96 Euro - 202 680,00 Euro
Cordis data

Original description

The overall goal of this cross-disciplinary project is to combine stretchable electronics with soft robotics in order to build up a novel materials platform that possesses multifunctional electronic control, sensing, and signaling coupled with actuation in response to environmental stimuli, such as electricity, heat, and light. In recent years the transformation of electronics into soft and stretchable organic systems has opened up a wide range of novel applications, including healthcare monitoring with ultrathin skin-like flexible devices, whereas actuators composed of soft active materials possess characteristics for microrobotics that are nearly impossible to achieve with conventional rigid systems, most notably mechanical compatibility with biological tissue. In this project interpenetrating conducting polymer networks will be fabricated in an actuator composed of a liquid crystal elastomer, a class of materials that has undergone rapid development within the past decade and is considered one of the best candidates for microscale soft robotics. The stimuli-response of the actuator brings about possibilities towards autonomous action, where it can sense the environment and act accordingly, representing multifunctional materials where the matrix has an active role in functionality. The unique combination of properties and functionalities promises coupled sensing and actuation that could have a transformative impact on the use of liquid crystal elastomers in soft matter applications. I envision that the conducting actuators have future applications as wearable sensors for heart rate detection and electrical nerve stimulation, with the reversible shape change enabling them to smoothly envelop around the target tissue.

Status

SIGNED

Call topic

MSCA-IF-2020

Update Date

28-04-2024
Images
No images available.
Geographical location(s)
Structured mapping
Unfold all
/
Fold all
Horizon 2020
H2020-EU.1. EXCELLENT SCIENCE
H2020-EU.1.3. EXCELLENT SCIENCE - Marie Skłodowska-Curie Actions (MSCA)
H2020-EU.1.3.2. Nurturing excellence by means of cross-border and cross-sector mobility
H2020-MSCA-IF-2020
MSCA-IF-2020 Individual Fellowships