Soft Electrothermal Meta-Actuator for Robust Multifunctional Control

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Jo, Hanseong, Shafirin, Pavel, Le, Christopher, Chan, Caden, Davoyan, Artur
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866916763987345408
author Jo, Hanseong
Shafirin, Pavel
Le, Christopher
Chan, Caden
Davoyan, Artur
author_facet Jo, Hanseong
Shafirin, Pavel
Le, Christopher
Chan, Caden
Davoyan, Artur
contents Soft electrothermal actuators are of great interest in diverse application domains for their simplicity, compliance, and ease of control. However, the very nature of thermally induced mechanical actuation sets inherent operation constraints: unidirectional motion, environmental sensitivity, and slow response times limited by passive cooling. To overcome these constraints, we propose a meta-actuator architecture, which uses engineered heat transfer in thin films to achieve multifunctional operation. We demonstrate electrically selectable bidirectional motion with large deflection ($ \geq $28% of actuator length at 0.75 W), suppressed thermal sensitivity to ambient temperature changes when compared to conventional actuators (>100$ \times $ lower), and actively forced return to the rest state, which is 10 times faster than that with passive cooling. We further show that our meta-actuator approach enables extended ranges of motions for manipulating complex objects. Versatile soft gripper operations highlight the meta-actuator's potential for soft robotics and devices.
format Preprint
id arxiv_https___arxiv_org_abs_2505_21992
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Soft Electrothermal Meta-Actuator for Robust Multifunctional Control
Jo, Hanseong
Shafirin, Pavel
Le, Christopher
Chan, Caden
Davoyan, Artur
Robotics
Soft electrothermal actuators are of great interest in diverse application domains for their simplicity, compliance, and ease of control. However, the very nature of thermally induced mechanical actuation sets inherent operation constraints: unidirectional motion, environmental sensitivity, and slow response times limited by passive cooling. To overcome these constraints, we propose a meta-actuator architecture, which uses engineered heat transfer in thin films to achieve multifunctional operation. We demonstrate electrically selectable bidirectional motion with large deflection ($ \geq $28% of actuator length at 0.75 W), suppressed thermal sensitivity to ambient temperature changes when compared to conventional actuators (>100$ \times $ lower), and actively forced return to the rest state, which is 10 times faster than that with passive cooling. We further show that our meta-actuator approach enables extended ranges of motions for manipulating complex objects. Versatile soft gripper operations highlight the meta-actuator's potential for soft robotics and devices.
title Soft Electrothermal Meta-Actuator for Robust Multifunctional Control
topic Robotics
url https://arxiv.org/abs/2505.21992