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通过表面 TEMPO 介导的氧化和部分脱乙酰作用制备两性离子纳米晶体。

Preparation of zwitterionically charged nanocrystals by surface TEMPO-mediated oxidation and partial deacetylation of α-chitin.

机构信息

Department of Chemistry and Biotechnology, Graduate School of Engineering, Tottori University, 4-101 Koyama-cho, Minami 680-8552, Tottori, Japan.

Department of Chemistry and Biotechnology, Graduate School of Engineering, Tottori University, 4-101 Koyama-cho, Minami 680-8552, Tottori, Japan.

出版信息

Carbohydr Polym. 2015 May 20;122:1-4. doi: 10.1016/j.carbpol.2014.12.060. Epub 2015 Jan 13.

Abstract

Zwitterionic nanocrystals were prepared by TEMPO-mediated oxidation, partial deacetylation, and subsequent mechanical disintegration of α-chitin. The pH dependence of the morphology, transparency, and viscosity of the nanocrystals were evaluated. After those reactions, the carboxylate and amino group contents of the chitin derivative were 0.45 and 1.26 mmol/g, respectively. After mechanical treatment, the water dispersion consisted of nanocrystals approximately 250 nm long and 10nm thick. Under acidic and basic conditions, the water dispersions were highly transparent. On the other hand, under neutral conditions, the dispersion was turbid due to the ionic interaction between the cationic and anionic groups on the nanocrystal surface. Although the surface zwitterionic nanocrystals collected from acidic and basic dispersion were randomly oriented due to electrostatic repulsions, nanocrystals formed aggregates in neutral water due to the cationic and anionic interaction between them. Nanocrystals in neutral water had higher viscosity than those in acidic and basic water, since ionic interaction caused nanocrystal networks to form in water.

摘要

两性离子纳米晶体通过 TEMPO 介导的氧化、部分脱乙酰化和随后的机械分解α-壳聚糖制备。评估了纳米晶体的形态、透明度和粘度对 pH 的依赖性。这些反应后,壳聚糖衍生物的羧酸盐和氨基含量分别为 0.45 和 1.26mmol/g。机械处理后,水分散体由长约 250nm、厚约 10nm 的纳米晶体组成。在酸性和碱性条件下,水分散体高度透明。另一方面,在中性条件下,由于纳米晶体表面上的阳离子和阴离子基团之间的离子相互作用,分散体混浊。尽管从酸性和碱性分散体中收集的表面两性离子纳米晶体由于静电排斥而随机取向,但由于它们之间的阳离子和阴离子相互作用,纳米晶体在中性水中形成聚集体。由于离子相互作用导致纳米晶体网络在水中形成,中性水中的纳米晶体比酸性和碱性水中的纳米晶体具有更高的粘度。

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