Tendon‐Inspired, Fatigue‐Resistant Conductive Organohydrogels via Solvent‐Exchange‐Assisted Mechanical Training

H Hongming Zhang J Jinyu Hou (Institute for Advanced Study/School of Mechanical Engineering Chengdu University Chengdu P. R. China) L Liangwei Zhu (Institute for Advanced Study/School of Mechanical Engineering Chengdu University Chengdu P. R. China) T Tianyu Yuan (Institute for Advanced Study/School of Mechanical Engineering Chengdu University Chengdu P. R. China) H Hang Ping (Hubei Longzhong Laboratory Wuhan University of Technology Xiangyang Demonstration Zone Xiangyang P. R. China) H Hao Chen F Fei Pan (College of Chemistry and Materials Science) Q Qingyuan Wang (Department of Physics) J Jingjiang Wei (Institute for Advanced Study/School of Mechanical Engineering Chengdu University Chengdu P. R. China)

Abstract

ABSTRACT The hierarchical fiber architecture of tendons, which integrates high fatigue resistance, high water content, and rapid responsiveness to stimuli over millions of annual cycles, makes them an ideal model for long‐term wearable intelligent materials. However, synthetic hydrogels prepared via methods such as electrospinning, freeze–thawing, freeze–casting, and solvent exchange, often lack comprehensive structural and functional integration compared to their biological counterparts. To address this challenge, we developed a synergistic fabrication strategy that integrates freeze–thawing, mechanical training, and solvent exchange to construct hierarchically structured hydrogels. The polyvinyl alcohol‐based hydrogel that has been repeatedly freeze–thawed, was then immersed in a glycerol/water solvent containing ferric chloride and subjected to approximately 200 000 mechanical training cycles. The resulting hydrogel exhibited remarkable comprehensive properties, including a tensile strength of 9.38 MPa, a fracture energy of 187.5 kJ m −2 , a fatigue threshold of 7850 J m −2 , a conductivity of 0.64 S m −1 , and excellent flexibility even at –80°C. Leveraging this multifunctionality, the hydrogel was further assembled into a strain sensor capable of precise, rapid monitoring of finger motion and was employed in a gesture‐controlled drone system. This work provides a universal and effective approach to designing fatigue‐resistant hydrogels, offering new insights into the development of next‐generation bioinspired, flexible electronic materials.

Article Details

Volume / Issue Vol. 38, Issue 33
Published June 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

H

Hongming Zhang

J

Jinyu Hou

Institute for Advanced Study/School of Mechanical Engineering Chengdu University Chengdu P. R. China

L

Liangwei Zhu

Institute for Advanced Study/School of Mechanical Engineering Chengdu University Chengdu P. R. China

T

Tianyu Yuan

Institute for Advanced Study/School of Mechanical Engineering Chengdu University Chengdu P. R. China

H

Hang Ping

Hubei Longzhong Laboratory Wuhan University of Technology Xiangyang Demonstration Zone Xiangyang P. R. China

H

Hao Chen

F

Fei Pan

College of Chemistry and Materials Science

Q

Qingyuan Wang

Department of Physics

J

Jingjiang Wei

Institute for Advanced Study/School of Mechanical Engineering Chengdu University Chengdu P. R. China