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增塑壳聚糖的层次结构和物理化学性质。

Hierarchical structure and physicochemical properties of plasticized chitosan.

机构信息

Department of Chemical Engineering and Research Center for High Performance Polymer and Composite Systems (CREPEC), Polytechnique Montreal , C.P. 6079, succ. Centre-Ville, Montreal, QC H3C 3A7, Canada.

出版信息

Biomacromolecules. 2014 Apr 14;15(4):1216-24. doi: 10.1021/bm401792u. Epub 2014 Mar 6.

Abstract

Plasticized chitosan with hierarchical structure, including multiple length scale structural units, was prepared by a "melt"-based method, that is, thermomechanical mixing, as opposed to the usual casting-evaporation procedure. Chitosan was successfully plasticized by thermomechanical mixing in the presence of concentrated lactic acid and glycerol using a batch mixer. Different plasticization formulations were compared in this study, in which concentrated lactic acid was used as protonation agent as well as plasticizer. The microstructure of thermomechanically plasticized chitosan was investigated by X-ray diffraction, scanning electron microscopy, and optical microscopy. With increasing amount of additional plasticizers (glycerol or water), the crystallinity of the plasticized chitosan decreased from 63.7% for the original chitosan powder to almost zero for the sample plasticized with additional water. Salt linkage between lactic acid molecules and amino side chains of chitosan was confirmed by FTIR spectroscopy: the lactic acid molecules expanded the space between the chitosan molecules of the crystalline phase. In the presence of other plasticizers (glycerol and water), various levels of structural units including an amorphous phase, nanofibrils, nanofibril clusters, and microfibers were produced under mechanical shear and thermal energy and identified for the first time. The thermal and thermomechanical properties of the plasticized chitosan were measured by thermogravimetric analysis, differential scanning calorimetric, and DMA. These properties were correlated with the different levels of microstructure, including multiple structural units.

摘要

具有层次结构的增塑壳聚糖,包括多个长度尺度的结构单元,是通过“熔融”法制备的,即热机械混合,而不是通常的浇铸-蒸发过程。在分批混合器中,使用浓乳酸和甘油作为质子化剂和增塑剂,成功地通过热机械混合对壳聚糖进行了增塑。在这项研究中比较了不同的增塑配方,其中浓乳酸既用作质子化剂又用作增塑剂。通过 X 射线衍射、扫描电子显微镜和光学显微镜研究了热机械增塑壳聚糖的微观结构。随着额外增塑剂(甘油或水)用量的增加,增塑壳聚糖的结晶度从原始壳聚糖粉末的 63.7%降低到添加水的样品几乎为零。傅里叶变换红外光谱证实了乳酸分子与壳聚糖氨基侧链之间的盐键:乳酸分子扩展了晶相壳聚糖分子之间的空间。在其他增塑剂(甘油和水)的存在下,在机械剪切和热能的作用下,产生了各种结构单元,包括无定形相、纳米纤维、纳米纤维簇和微纤维,并首次对其进行了鉴定。通过热重分析、差示扫描量热法和 DMA 测量了增塑壳聚糖的热和热机械性能。这些性能与不同水平的微观结构相关,包括多个结构单元。

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