Structurally isolated photoactuation of graphene-mixed temperature-responsive hydrogels in soft-rigid series structure

Abstract This paper presents fabrication and actuation methods for a soft microrobot with a hybrid structure composed of soft microactuators and a rigid supporting body. This hybrid structure enables actuation of the microrobot with independent driving of multiple actuators to provide complex moveme...

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Main Authors: Tomoki Watanabe, Yoshiyuki Yokoyama, Takeshi Hayakawa
Format: Article
Language:English
Published: SpringerOpen 2019-09-01
Series:ROBOMECH Journal
Subjects:
Online Access:http://link.springer.com/article/10.1186/s40648-019-0140-3
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author Tomoki Watanabe
Yoshiyuki Yokoyama
Takeshi Hayakawa
author_facet Tomoki Watanabe
Yoshiyuki Yokoyama
Takeshi Hayakawa
author_sort Tomoki Watanabe
collection DOAJ
description Abstract This paper presents fabrication and actuation methods for a soft microrobot with a hybrid structure composed of soft microactuators and a rigid supporting body. This hybrid structure enables actuation of the microrobot with independent driving of multiple actuators to provide complex movement like that of living microorganisms. We use the temperature-responsive hydrogel poly(N-isopropylacrylamide) (PNIPAAm) as a soft microactuator. PNIPAAm swells with water at low temperature but shrinks at high temperature. This volume change thus allows PNIPAAm to be used as an actuator by controlling its temperature. We successfully fabricated the microrobot with its soft-rigid hybrid structure composed of PNIPAAm and rigid photoresist using a multilayered microfabrication process. In addition, we used a sacrificial layer process to release the fabricated microrobot from the substrate to allow it to move freely. To actuate the microrobot, we mixed PNIPAAm with graphene, which has a high photothermal conversion efficiency. The temperature of the soft actuator when mixed with graphene can be increased by irradiating it with light. Therefore, actuation of the microrobot is achieved by sequentially irradiating the microactuators with focused light. We present the fabrication, release and partial actuation of the microrobot to demonstrate the feasibility of the proposed microrobot with the soft-rigid hybrid structure in this paper.
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spelling doaj.art-2ef8f667b72c4afaa29923be3341fa3a2022-12-22T00:40:39ZengSpringerOpenROBOMECH Journal2197-42252019-09-01611910.1186/s40648-019-0140-3Structurally isolated photoactuation of graphene-mixed temperature-responsive hydrogels in soft-rigid series structureTomoki Watanabe0Yoshiyuki Yokoyama1Takeshi Hayakawa2Department of Precision Engineering, Chuo UniversityToyama Industrial Technology Research and Development CenterDepartment of Precision Engineering, Chuo UniversityAbstract This paper presents fabrication and actuation methods for a soft microrobot with a hybrid structure composed of soft microactuators and a rigid supporting body. This hybrid structure enables actuation of the microrobot with independent driving of multiple actuators to provide complex movement like that of living microorganisms. We use the temperature-responsive hydrogel poly(N-isopropylacrylamide) (PNIPAAm) as a soft microactuator. PNIPAAm swells with water at low temperature but shrinks at high temperature. This volume change thus allows PNIPAAm to be used as an actuator by controlling its temperature. We successfully fabricated the microrobot with its soft-rigid hybrid structure composed of PNIPAAm and rigid photoresist using a multilayered microfabrication process. In addition, we used a sacrificial layer process to release the fabricated microrobot from the substrate to allow it to move freely. To actuate the microrobot, we mixed PNIPAAm with graphene, which has a high photothermal conversion efficiency. The temperature of the soft actuator when mixed with graphene can be increased by irradiating it with light. Therefore, actuation of the microrobot is achieved by sequentially irradiating the microactuators with focused light. We present the fabrication, release and partial actuation of the microrobot to demonstrate the feasibility of the proposed microrobot with the soft-rigid hybrid structure in this paper.http://link.springer.com/article/10.1186/s40648-019-0140-3Soft robotGel actuatorMicrorobotPNIPAAmGraphene
spellingShingle Tomoki Watanabe
Yoshiyuki Yokoyama
Takeshi Hayakawa
Structurally isolated photoactuation of graphene-mixed temperature-responsive hydrogels in soft-rigid series structure
ROBOMECH Journal
Soft robot
Gel actuator
Microrobot
PNIPAAm
Graphene
title Structurally isolated photoactuation of graphene-mixed temperature-responsive hydrogels in soft-rigid series structure
title_full Structurally isolated photoactuation of graphene-mixed temperature-responsive hydrogels in soft-rigid series structure
title_fullStr Structurally isolated photoactuation of graphene-mixed temperature-responsive hydrogels in soft-rigid series structure
title_full_unstemmed Structurally isolated photoactuation of graphene-mixed temperature-responsive hydrogels in soft-rigid series structure
title_short Structurally isolated photoactuation of graphene-mixed temperature-responsive hydrogels in soft-rigid series structure
title_sort structurally isolated photoactuation of graphene mixed temperature responsive hydrogels in soft rigid series structure
topic Soft robot
Gel actuator
Microrobot
PNIPAAm
Graphene
url http://link.springer.com/article/10.1186/s40648-019-0140-3
work_keys_str_mv AT tomokiwatanabe structurallyisolatedphotoactuationofgraphenemixedtemperatureresponsivehydrogelsinsoftrigidseriesstructure
AT yoshiyukiyokoyama structurallyisolatedphotoactuationofgraphenemixedtemperatureresponsivehydrogelsinsoftrigidseriesstructure
AT takeshihayakawa structurallyisolatedphotoactuationofgraphenemixedtemperatureresponsivehydrogelsinsoftrigidseriesstructure