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Published on: April 7, 2017
Dynamic Supramolecular Hydrophobic Ionogels with Ultrafast Self-Healing for Reliable Underwater Electronics
Yunbo Mo1, Yafang Wang1, Kai Wang1
1National Engineering Laboratory for Clean Technology of Leather Manufacture, College of Biomass Science and Engineering, Sichuan University, Chengdu610065, P. R. China.
Abstract:
Conductive ionogels integrating rapid self-healing, underwater stability, and reliable sensing capability are highly desirable for next-generation wearable electronics, yet remain challenging to achieve simultaneously. Herein, a multifunctional hydrophobic ionogel is developed through in situ UV-initiated copolymerization of tert-butyl acrylate (tBA), 2-(dimethylamino)ethyl methacrylate (DMAEMA), and di(ethylene glycol) ethyl ether acrylate (DEEA) in the hydrophobic ionic liquid 1-ethyl-3-methylimidazolium bis(trifluoromethanesulfonyl)imide ([EMIm][TFSI]). Strong ion-dipole interactions and hydrogen bonding between DMAEMA segments and TFSI- anions establish a dynamic supramolecular network, endowing the ionogel with ultrafast self-healing, excellent environmental tolerance, and robust adhesion in both air and underwater environments. The optimized ionogel exhibits high transparency (>96%), stable ionic conductivity (1.17 mS cm-1), excellent flexibility, and high hydrophobicity with a water contact angle of 116°. Notably, the ionogel achieves rapid self-healing with efficiencies of 98% within 30 s in air and 95% within 5 min underwater without external stimulation, while its sensing and conductive performances are almost fully restored after repeated damage-healing cycles. Benefiting from stable ion transport channels and a robust dynamic network, the ionogel-based sensor displays high sensitivity, rapid response, excellent cycling durability, and reliable underwater sensing capability. As a proof of concept, the ionogel sensor is further employed for underwater Morse-code communication and can be integrated with an Arduino-based Internet of Things (IoT) platform to demonstrate a wearable emergency alarm system operable in both air and underwater environments. This work provides a versatile strategy for developing next-generation self-healing ionogels for wearable electronics, underwater communication, intelligent sensing, and emergency rescue systems.

