Biodegradable, Stretchable, and Self‐Healing Starch‐Based Hydrogel with Intelligent Multi‐Bond Network Facilitated by MXene Nanosheets for Multifunctional Wearable Electronics

T Tingjie Chen (College of Materials Science and Engineering Key Laboratory of Polymer Materials and Products of Universities in Fujian Fujian University of Technology Fuzhou 350002 P. R. China) X Xia Chen Z Zhaoxing Lin (College of Materials Science and Engineering Key Laboratory of Polymer Materials and Products of Universities in Fujian Fujian University of Technology Fuzhou 350002 P. R. China) Y Yi Zhang G Gang Zhao (Department of Systems Immunology, Helmholtz Centre for Infection Research) L Lihong Xu (State Key Laboratory of Structural Chemistry and Fujian Provincial Key Laboratory of Materials and Techniques toward Hydrogen Energy Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences Fuzhou Fujian 350002 China) X Xiangfang Peng B Binghui Wu

Abstract

Abstract With the rapid advancement of hydrogel‐based flexible electronics, multifunctional hydrogels with an emphasis on environmental sustainability have attracted growing attention. In this work, a starch‐based hydrogel featuring a multi‐bond network structure—composed of amylopectin, polyvinyl alcohol, borax, and MXene nanosheets—is prepared via a simple, scalable kneading method using a roller machine. The reversible crosslinking from hydrogen bonding and electrostatic interactions, along with MXene nanosheets acting as stress‐transfer centers, endow the hydrogel with exceptional stretchability (∼6151%), high electrical conductivity, fast self‐healing, and strong adhesion. The resulting capacitive sensor exhibits high sensitivity (gauge factor = 1.1), a broad sensing range (up to 300%), and excellent durability, allowing accurate detection of physiological signals. It also enables Morse code‐based encryption of letters, numbers, and punctuation, highlighting its potential in wearable and secure communication technologies. Notably, the hydrogel biodegrades in natural soil within 20 days, addressing electronic waste concerns. This study presents a recyclable, high‐performance hydrogel with broad application prospects in flexible electronics, healthcare monitoring, and assistive communication.

Article Details

Volume / Issue Vol. 38, Issue 2
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

T

Tingjie Chen

College of Materials Science and Engineering Key Laboratory of Polymer Materials and Products of Universities in Fujian Fujian University of Technology Fuzhou 350002 P. R. China

X

Xia Chen

Z

Zhaoxing Lin

College of Materials Science and Engineering Key Laboratory of Polymer Materials and Products of Universities in Fujian Fujian University of Technology Fuzhou 350002 P. R. China

Y

Yi Zhang

G

Gang Zhao

Department of Systems Immunology, Helmholtz Centre for Infection Research

L

Lihong Xu

State Key Laboratory of Structural Chemistry and Fujian Provincial Key Laboratory of Materials and Techniques toward Hydrogen Energy Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences Fuzhou Fujian 350002 China

X

Xiangfang Peng

B

Binghui Wu