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应用响应面法来定制静电纺丝壳聚糖-聚氧化乙烯纤维的表面化学性质。

Application of response surface methodology to tailor the surface chemistry of electrospun chitosan-poly(ethylene oxide) fibers.

机构信息

Empa, Laboratory for Biomimetic Membranes and Textiles, Lerchenfeldstrasse 5, CH-9014 St. Gallen, Switzerland; University of Freiburg, Faculty of Environment & Natural Resources, Chair of Forest Botany, Bertoldstrasse 17, DE-79085 Freiburg, Germany.

Empa, Laboratory for Biomimetic Membranes and Textiles, Lerchenfeldstrasse 5, CH-9014 St. Gallen, Switzerland; École européenne de Chimie, Polymères et Matériaux, Université de Strasbourg, 25 Rue Becquerel, FR-67087 Strasbourg, France.

出版信息

Carbohydr Polym. 2018 Apr 15;186:122-131. doi: 10.1016/j.carbpol.2018.01.038. Epub 2018 Jan 11.

Abstract

Chitosan is a promising biocompatible polymer for regenerative engineering applications, but its processing remains challenging due to limited solubility and rigid crystalline structure. This work represents the development of electrospun chitosan/poly(ethylene oxide) blend nanofibrous membranes by means of a numerical analysis in order to identify and tailor the main influencing parameters with respect to accessible surface nitrogen functionalities which are of importance for the biological activity as well as for further functionalization. Depending on the solution composition, both gradient fibers and homogenous blended fiber structures could be obtained with surface nitrogen concentrations varying between 0 and 6.4%. Response surface methodology (RSM) revealed chitosan/poly(ethylene oxide) ratio and chitosan molecular weight as the main influencing factors with respect to accessible nitrogen surface atoms and respective concentrations. The model showed good adequacy hence providing a tool to tailor the surface properties of chitosan/poly(ethylene oxide) blends by addressing the amount of accessible chitosan.

摘要

壳聚糖是一种有前途的生物相容性聚合物,适用于再生工程应用,但由于其溶解度有限和刚性晶体结构,其加工仍然具有挑战性。这项工作通过数值分析开发了壳聚糖/聚(氧化乙烯)共混纳米纤维膜的静电纺丝,以确定和调整主要影响参数,这些参数与可及表面氮官能团有关,氮官能团对生物活性以及进一步的功能化都很重要。根据溶液组成,可以获得具有梯度纤维和均匀混合纤维结构的纤维,表面氮浓度在 0 到 6.4%之间变化。响应面法(RSM)显示,壳聚糖/聚(氧化乙烯)的比例和壳聚糖的分子量是影响可及氮表面原子及其相应浓度的主要因素。该模型显示了良好的适宜性,因此提供了一种通过调节可及壳聚糖的量来调整壳聚糖/聚(氧化乙烯)共混物表面性能的工具。

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