4.6 Review

Biomimetic anti-freezing polymeric hydrogels: keeping soft-wet materials active in cold environments

Journal

MATERIALS HORIZONS
Volume 8, Issue 2, Pages 351-369

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0mh01029d

Keywords

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Funding

  1. National Natural Science Foundation of China [21922303, 51873223, 51773215, 21774138]
  2. Youth Innovation Promotion Association of Chinese Academy of Sciences [2017337, 2019297]
  3. Shenzhen Science and Technology Foundation [SGLH20180622151607182]
  4. Key Research Program of Frontier Science, Chinese Academy of Sciences [QYZDB-SSW-SLH036]
  5. K. C. Wong Education Foundation [GJTD-2019-13]

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Hydrogels, as outstanding materials, have been extensively studied for various fields of application, but their properties are compromised at sub-zero temperatures. Lowering the liquid-solid phase transition temperature is crucial for expanding their applications. Research on anti-freezing hydrogels mainly focuses on additives, polymer network modification, and future developments hold promising research directions.
As one of the most outstanding materials, the analysis of the structure and function of hydrogels has been extensively carried out to tailor and adapt them to various fields of application. The high water content, which is beneficial for plenty of applications in the biomedical setting, prevents the adoption of hydrogels in flexible electronics and sensors in real life applications, because hydrogels lose their excellent properties, including conductivity, transparency, flexibility, etc., upon freezing at sub-zero temperatures. Therefore, depressing the liquid-solid phase transition temperature is a powerful means to expand the application scope of hydrogels, and will benefit the chemical engineering and materials science communities. This review summarizes the recent research progress of anti-freezing hydrogels. At first, approaches for the generation of anti-freezing (hydro)gels are introduced and their anti-freezing mechanisms and performances are briefly discussed. These approaches are either based on addition of salts, alcohols (cryoprotectants and organohydrogels), and ionic liquids (ionogels), modification of the polymer network or a combination of several techniques. Then, a concise overview of applications leveraged by the widened temperature resistance is provided and future research areas and developments are envisaged.

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