纳米纤维素
自愈
材料科学
纳米纤维
氢键
生物相容性
单宁酸
化学工程
流变学
纤维素
动态力学分析
亚胺
高分子化学
复合材料
聚合物
化学
有机化学
分子
医学
替代医学
病理
工程类
冶金
催化作用
作者
Pejman Heidarian,Saleh Gharaie,Hossein Yousefi,Mariana Paulino,Akif Kaynak,Russell J. Varley,Abbas Z. Kouzani
标识
DOI:10.1016/j.carbpol.2022.119545
摘要
Presented here is the synthesis of a 3D printable nano-polysaccharide self-healing hydrogel for flexible strain sensors. Consisting of three distinct yet complementary dynamic bonds, the crosslinked network comprises imine, hydrogen, and catecholato-metal coordination bonds. Self-healing of the hydrogel is demonstrated by macroscopic observation, rheological recovery, and compression measurements. The hydrogel was produced via imine formation of carboxyl methyl chitosan, oxidized cellulose nanofibers, and chitin nanofibers followed by two subsequent crosslinking stages: immersion in tannic acid (TA) solution to create hydrogen bonds, followed by soaking in FeIII solution to form catecholato-metal coordination bonds between TA and FeIII. The metal coordination bonds were critical to imparting conductivity to the hydrogel, a requirement for flexible strain sensors. The hydrogel exhibits excellent shear-thinning and dynamic properties with high autonomous self-healing (up to 89%) and self-recovery (up to 100%) at room temperature without external stimuli. Furthermore, it shows good printability, biocompatibility, and strain sensing ability.
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