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Ultrathin Porated Elastic Hydrogels As a Biomimetic Basement Membrane for Dual Cell Culture
Published on: December 26, 2017
Biomimetic phase-separated bilayer gel sensors with robust interfacial adhesion for high-humidity and underwater
Wenqin Zhong1, Yannan Wang1, Yehan Tao1
1Liaoning Key Lab of Lignocellulose Chemistry and BioMaterials, Liaoning Collaborative Innovation Center for Lignocellulosic Biorefinery, Department of Light Industry and Chemical Engineering, Dalian Polytechnic University, Dalian, 116034, China.
Abstract:
Traditional hydrogel-based flexible sensors suffer from structural instability and severe electrical fluctuations in high-humidity or underwater environments due to their single-layer networks and poor water resistance. Inspired by the multi-layered structure of biological surfaces, this research develops a biomimetic, phase-separated bilayer flexible material (DAC-Gel-PAM-BA-50IL) comprising a skin-conforming hydrogel substrate and a hydrophobic outer ionogel layer. The inner dialdehyde cellulose (DAC)/gelatin/polyacrylamide dual-network hydrogel provides exceptional biological tissue adhesion (0.08 MPa on pigskin) and stretchability, while the outer fluorinated ionogel serves as a robust waterproof barrier to isolate environmental humidity. Benefiting from the synergistic interfacial hydrogen bonding and ion-dipole interactions, the bilayer gel demonstrates a stable mechanical interlocking with an impressive fracture strain of 408%. Remarkably, the integrated sensor exhibits reliable ionic conductivity across a wide temperature range (-20 °C to 30 °C) and humidity range, alongside a fast response time (217 ms) and outstanding cyclic stability (800 cycles). Leveraging these superior electromechanical and waterproof properties, the skin-attachable device is successfully applied to real-time human motion monitoring and accurate underwater Morse code communication. This study offers a simple, scalable, and innovative structural design strategy for multi-phasic flexible sensors in wearable healthcare and smart underwater electronics.

