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A Dynamically Cross-Linked, Stretchable, Self-Healing, and Recyclable Polyurethane-Based Ionogel for Flexible Strain
Hua Yu1, Miao Yu1, Xueling Feng1,2
1Key Lab of Sustainable Low-Carbon Technologies for Textile Dyeing and Finishing, Ministry of Education, College of Chemistry and Chemical Engineering, Donghua University, Shanghai 201620, China.
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Flexible ionic conductors, as the core materials for next-generation electronic devices, are widely applied in electronic skin, wearable health monitoring devices, and flexible sensors. However, integrating excellent mechanical properties, efficient self-healing, and recyclability into one material remains challenging. In this work, we synthesize a polyurethane featuring dynamic supramolecular interactions by combining quadruple hydrogen bonds in side chains with disulfide bonds. This polymer exhibits outstanding mechanical performance, with a tensile strength of 17.6 MPa, an elongation at break of 1716%, and a toughness of 154.66 MJ/m3. Subsequently, an ionic liquid ([EMIM][TFSI]) is introduced via solvent evaporation, yielding a high-performance ionogel that marries dynamic supramolecular networks with ionic conductivity. The resulting ionogel achieved a tensile strength of 1.26 MPa, an elongation of 2585%, a toughness of 20.45 MJ/m3, along with remarkable self-healing ability and full recyclability. Based on these attributes, the ionogel is further fabricated into a flexible strain sensor, which demonstrates reliable sensitivity and excellent cyclic stability. This work provides a material platform and design concept for developing highly reliable, practical, and multifunctional flexible electronic devices.

