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Published on: January 14, 2020
CaCl2-Enhanced Interpenetrating Polymer Network Hydrogels with Stable Freeze Resistance and Sensing Durability
Jizhe Feng1, Yumeng Li1, Xiaoai Yang1
1China-UK Low Carbon College, Shanghai Jiao Tong University, No. 3 Yinlian Road, Lingang, Shanghai201306, China.
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Hydrogels are attractive for flexible electronics and wearable sensors, yet their performance is severely limited at subzero temperatures due to ice crystallization, dehydration, and mechanical embrittlement. Here, we report a CaCl2-enhanced double-network (DN) hydrogel (BNP-x) that integrates excellent anti-freezing, mechanical, and adhesive properties with reliable strain-sensing capabilities. The hydrogel combines a covalently crosslinked P(NIPAm-co-HEA) network and an ionically coordinated poly(acrylic acid) network, in which Ca2+ ions regulate water states and suppress ice formation. The optimized BNP-6 hydrogel exhibits excellent low-temperature performance, maintaining a tensile strength of 0.16 MPa and an elongation at break of ∼849% at -30 °C with minimal mass loss and stable properties over repeated freeze-thaw cycles. Owing to the synergistic DN structure and mobile Ca2+ ions, BNP-6 retains high ionic conductivity (44.1 mS cm-1 at -10 °C), representing only a 17.9% decrease compared to its room-temperature value. Moreover, the hydrogel demonstrates stable adhesion, rapid strain response, and reliable sensing performance under subzero conditions-even during cyclic deformation and self-healing processes-highlighting its potential for robust low-temperature wearable electronics and bioelectronic interfaces operating in harsh environments.

