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壳聚糖-ZnO 纳米杂化材料的简便快速原位合成;生物矿化、超声、生物安全形态-导电剂的新颖组合。

Facile and rapid in-situ synthesis of chitosan-ZnO nano-hybrids applicable in medical purposes; a novel combination of biomineralization, ultrasound, and bio-safe morphology-conducting agent.

机构信息

Department of Polymer Engineering, Faculty of Engineering, Golestan University, Gorgan, Iran.

Department of Polymer Engineering, Faculty of Engineering, Golestan University, Gorgan, Iran.

出版信息

Int J Biol Macromol. 2019 Jun 15;131:107-116. doi: 10.1016/j.ijbiomac.2019.01.224. Epub 2019 Feb 15.

Abstract

In this study, zinc oxide nanoparticle (ZnO-NPs) and also chitosan‑zinc oxide (CS-ZnO-NPs) nano-hybrid were synthesized by a rapid ultrasound assisted co-precipitation method. The morphology, chemical bonding, crystal structure, UV absorption, toxicity and antibacterial properties of the CS-ZnO-NPs and ZnO-NPs were characterized. The FE-SEM (field emission scanning electron microscopy) micrographs and XRD (X-ray diffraction) analysis revealed that the used technique led to the preparation of homogeneous, ultra-thin (thickness of 20-30 nm) and highly pure ZnO sheets for the both kinds of nanoparticles. The obtained results also demonstrated a superior performance of CS-ZnO-NPs hybrid rather than ZnO-NPs in terms of antibacterial activity, cell viability and UV absorption. It was deduced that the designed biomineralization technique was a very fast and successful strategy to provide a ZnO hybrid with elevated bacterial growth inhibition and bio-safety. Furthermore, the experimental data of antibacterial analyses were compared with the curves obtained from modified Gompertz model and good accordance was observed.

摘要

在这项研究中,通过快速超声辅助共沉淀法合成了氧化锌纳米粒子(ZnO-NPs)和壳聚糖-氧化锌(CS-ZnO-NPs)纳米杂化材料。对 CS-ZnO-NPs 和 ZnO-NPs 的形貌、化学键、晶体结构、紫外吸收、毒性和抗菌性能进行了表征。FE-SEM(场发射扫描电子显微镜)形貌和 XRD(X 射线衍射)分析表明,所采用的技术导致了两种纳米粒子的均匀、超薄(厚度为 20-30nm)和高纯度 ZnO 片的制备。获得的结果还表明,CS-ZnO-NPs 杂化在抗菌活性、细胞活力和紫外吸收方面的性能优于 ZnO-NPs。可以推断,所设计的生物矿化技术是一种非常快速和成功的策略,可以提供具有更高细菌生长抑制和生物安全性的 ZnO 杂化材料。此外,抗菌分析的实验数据与从改进的 Gompertz 模型获得的曲线进行了比较,观察到了很好的一致性。

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