TY - JOUR
T1 - Environment-Interactive Programmable Deformation of Electronically Innervated Synergistic Fluorescence-Color/Shape Changeable Hydrogel Actuators
AU - Xie, Junni
AU - Wei, Shuxin
AU - Lu, Wei
AU - Wu, Shuangshuang
AU - Zhang, Yi
AU - Wang, Ruijia
AU - Zhu, Ning
AU - Chen, Tao
N1 - Publisher Copyright:
© 2023 Wiley-VCH GmbH.
PY - 2023/11/22
Y1 - 2023/11/22
N2 - Utilization of life-like hydrogels to replicate synergistic shape/color changeable behaviors of living organisms has been long envisaged to produce robust functional integrated soft actuators/robots. However, it remains challenging to construct such hydrogel systems with integrated functionality of remote, localized and environment-interactive control over synergistic discoloration/actuation. Herein, inspired by the evolution-optimized bioelectricity stimulus and multilayer structure of natural reptile skins, electronically innervated fluorescence-color switchable hydrogel actuating systems with bio-inspired multilayer structure comprising of responsive fluorescent hydrogel sheet and conductive Graphene/PDMS film with electrothermal effect is presented. Such rational structure enables remote control over synergistic fluorescence-color and shape changes of the systems via the cascading “electrical trigger-Joule heat generation-hydrogel shrinkage” mechanism. Consequently, local/sequential control of discoloration/actuation are achieved due to the highly controllable electrical stimulus in terms of amplitude and circuit design. Furthermore, by joint use with acoustic sensors, soft chameleon robots with unprecedented environment-interactive adaptation are demonstrated, which can intelligently sense environment signals to adjust their color/shape-changeable behaviors. This work opens previously unidentified avenues for functional integrated soft actuators/robots and will inspire life-like intelligent systems for versatile uses.
AB - Utilization of life-like hydrogels to replicate synergistic shape/color changeable behaviors of living organisms has been long envisaged to produce robust functional integrated soft actuators/robots. However, it remains challenging to construct such hydrogel systems with integrated functionality of remote, localized and environment-interactive control over synergistic discoloration/actuation. Herein, inspired by the evolution-optimized bioelectricity stimulus and multilayer structure of natural reptile skins, electronically innervated fluorescence-color switchable hydrogel actuating systems with bio-inspired multilayer structure comprising of responsive fluorescent hydrogel sheet and conductive Graphene/PDMS film with electrothermal effect is presented. Such rational structure enables remote control over synergistic fluorescence-color and shape changes of the systems via the cascading “electrical trigger-Joule heat generation-hydrogel shrinkage” mechanism. Consequently, local/sequential control of discoloration/actuation are achieved due to the highly controllable electrical stimulus in terms of amplitude and circuit design. Furthermore, by joint use with acoustic sensors, soft chameleon robots with unprecedented environment-interactive adaptation are demonstrated, which can intelligently sense environment signals to adjust their color/shape-changeable behaviors. This work opens previously unidentified avenues for functional integrated soft actuators/robots and will inspire life-like intelligent systems for versatile uses.
KW - electrothermal effect
KW - environment-interaction
KW - multicolor fluorescence
KW - multilayer structures
KW - polymeric hydrogels
UR - http://www.scopus.com/inward/record.url?scp=85165683991&partnerID=8YFLogxK
U2 - 10.1002/smll.202304204
DO - 10.1002/smll.202304204
M3 - 文章
C2 - 37496099
AN - SCOPUS:85165683991
SN - 1613-6810
VL - 19
JO - Small
JF - Small
IS - 47
M1 - 2304204
ER -