Covalently surface-grafting α‑zirconium phosphate nanoplatelets enables collagen fiber matrix with ultraviolet barrier, antibacterial, and flame-retardant properties

材料科学 表面改性 阻燃剂 磷酸锆 纳米复合材料 纳米材料 复合材料 基质(化学分析) 化学工程 紫外线 纳米技术 磷酸盐 化学 有机化学 工程类 光电子学
作者
Jiabo Shi,Yuxuan Zhang,Na Yang,Xiaoyu Guan,Sheng Li,Leipeng Liu,Wenbin Zhong
出处
期刊:International Journal of Biological Macromolecules [Elsevier BV]
卷期号:254: 127999-127999 被引量:6
标识
DOI:10.1016/j.ijbiomac.2023.127999
摘要

Manipulating the dispersibility and reactivity of two-dimensional nanomaterials in collagen fibers (CFs) matrix has aroused attention in the fabrication of multifunctional collagen-based nanocomposites. Here, α‑zirconium phosphate nanoplatelets (ZrP NPs) were surface-functionalized with gallic acid (GA) to afford ZrP–GA NPs for engineering CFs matrix. The influence of ZrP–GA NPs on the ultraviolet barrier, antibacterial, and flame-retardant properties of resultant CFs matrix were investigated. Microstructural analysis revealed that ZrP–GA NPs were dispersed and bound within the collagen fibrils and onto the collagen strands in the CFs matrix. The resultant CFs matrix also maintained typical D-periodic structures of collagen fibrils and native branching and interwoven structures of CFs networks with increased porosity and enhanced ultraviolet barrier properties. Inhibition zone testing presented excellent antibacterial activities of the CFs matrix owing to surface grafting of antibacterial GA. Thanks to enhanced dispersion and binding of ZrP NPs with the CFs matrix by surface-functionalization with GA, the resultant CFs matrix reduced the peak heat release rate and the total heat release by 42.9 % and 39.0 %, respectively, highlighting improved flame-retardant properties. We envision that two-dimensional nanomaterials possess great potential in developing reasonable collagen-based nanocomposites towards the manufacture of emergent multifunctional collagen fibers-based wearable electronics.
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