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Review Aug 2026

Antifreeze and self-healing hydrogels with hyaluronic acid functional cellulose nanocrystals and proline for flexible sensors.

In recent years, hydrogels have emerged as viable candidates for soft conductors in wearable flexible electronics, due to their distinctive properties including high water content, excellent biocompatibility, and adjustable mechanical properties. However, the crystallization of H2O molecules within hydrogels at low temperatures leads to significant deterioration in their toughness and mechanical strength, severely restricting their practical applications in cold environments. Cellulose nanocrystals (CNCs), rod-like nanomaterials with high crystallinity extracted from natural cellulose, have attracted increasing attention due to their outstanding mechanical properties, biocompatibility, and environmental friendliness. In this study, hyaluronic acid (HA) was adsorbed onto the surface of CNCs via hydrogen bonding, forming CNCs@HA nanomaterials. And then zwitterion proline (ZP) and CNCs@HA were incorporated into an acrylic acid-based hydrogel system, resulting in the formation of a novel freeze-resistant and self-healing nanocomposite hydrogel PAA-CNCs@HA-ZP-Fe3+ (PCHZF). The excellent properties of PCHZF can be attributed to the strong hydrogen bonding network formed among water molecules, CNCs@HA, and ZP molecules. These intermolecular interactions effectively inhibit the crystallization of water and maintain the integrity of the hydrogel matrix at low temperatures. Its compressive strength reaches 2.2 MPa, with a remarkable self-healing efficiency of 88.2%, and it can even achieve reliable sensing performance at extremely low temperatures.

Xiaohui Liu, Shaoning Shi, Jiarui Liu et al. · 0 citations

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