4.2 Review

Recent advances in polysaccharide-based hydrogels for synthesis and applications

期刊

AGGREGATE
卷 2, 期 2, 页码 -

出版社

WILEY
DOI: 10.1002/agt2.21

关键词

applications; double-network; dynamic covalent interactions; noncovalent interactions; polysaccharide-based hydrogels

资金

  1. Air Force Office of Scientific Research [FA9550-19-1-0317]
  2. NSF [DMR 1903990, Chemistry 1903957]

向作者/读者索取更多资源

Polysaccharide-based hydrogels are formed by utilizing polysaccharides as building blocks through physical or chemical crosslinking, showcasing good biocompatibility and biodegradability, as well as unique physicochemical properties and excellent mechanical performance.
Hydrogels are three-dimensional (3D) crosslinked hydrophilic polymer networks that have garnered tremendous interests in many fields, including water treatment, energy storage, and regenerative medicine. However, conventional synthetic polymer hydrogels have poor biocompatibility. In this context, polysaccharides, a class of renewable natural materials with biocompatible and biodegradable properties, have been utilized as building blocks to yield polysaccharide-based hydrogels through physical and/or chemical crosslinking of polysaccharides via a variety of monomers or ions. These polysaccharide-derived hydrogels exhibit peculiar physicochemical properties and excellent mechanical properties due to their unique structures and abundant functional groups. This review focuses on recent advances in synthesis and applications of polysaccharide-based hydrogels by capitalizing on a set of biocompatible and biodegradable polysaccharides (i.e., cellulose, alginate, chitosan, and cyclodextrins [CDs]). First, we introduce the design and synthesis principles for crafting polysaccharide-based hydrogels. Second, polysaccharide-based hydrogels that are interconnected via various crosslinking strategies (e.g., physical crosslinking, chemical crosslinking, and double networking) are summarized. In particular, the introduction of noncovalent and/or dynamic covalent interactions imparts polysaccharide-based hydrogels with a myriad of intriguing performances (e.g., stimuli-response and self-recovery). Third, the diverse applications of polysaccharide-based hydrogels in self-healing, sensory, supercapacitor, battery, drug delivery, wound healing, tissues engineering, and bioimaging fields are discussed. Finally, the perspectives of polysaccharide-based hydrogels that promote their future design to enable new functions and applications are outlined.

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