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Updated: Jan 14, 2026

Microhoneycomb Monoliths Prepared by the Unidirectional Freeze-drying of Cellulose Nanofiber Based Sols: Method and Extensions
Published on: May 24, 2018
Cellulose nanofibril-enhanced strong ionic gel with dynamic hydrogen bonds for cryogenic and dehydration-resistant
Shibo Feng1, Jiale Tan1, Yongmao Li1
1Hebei Key Laboratory of Smart Sensing and Human-Robot Interaction, Engineering Research Center of the Ministry of Education for Intelligent Rehabilitation Equipment and Detection Technologies, School of Mechanical Engineering, Hebei University of Technology, Tianjin, 300401, China.
Abstract:
The growing demand for high-performance tactile sensors in flexible electronics, such as electronic skins, robots, and wearable devices, has highlighted the need for robust ionic conductors. While traditional hydrogels, organogels, and ionogels are commonly used, their performance is often compromised under extreme conditions like freezing and dehydration. Here, we present a hydrogen bonds reinforced ionic gel, synthesized via a simple casting process using polyvinyl alcohol (PVA), cellulose nanofibril (CNF), and phytic acid (PA) (PVA-CNF-PA gels). The ionic gel demonstrates superior ionic conductivity (0.352 S m-1), exceptional stretchability (860 % elongation at break), strong (up to 36.4 MPa), and remarkable environmental stability. Notably, it maintains 0.161 S m-1 conductivity at -20 °C and >99 % mass retention after 120 days in ambient conditions. When integrated into supercapacitive pressure sensors, PCPGs exhibits a broad sensing range (20 Pa-400 kPa) and high sensitivity (3.5 MPa-1), functioning reliably under harsh environmental conditions. These findings position PVA-CNF-PA gels as a promising material for next-generation flexible sensors and ionic conductors.

