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果胶和木葡聚糖对细菌纤维素复合材料结构和力学性能的同时影响。

Simultaneous influence of pectin and xyloglucan on structure and mechanical properties of bacterial cellulose composites.

机构信息

Institute of Agrophysics, Polish Academy of Sciences, Doswiadczalna 4, 20-290 Lublin, Poland.

Institute of Agrophysics, Polish Academy of Sciences, Doswiadczalna 4, 20-290 Lublin, Poland.

出版信息

Carbohydr Polym. 2017 Oct 15;174:970-979. doi: 10.1016/j.carbpol.2017.07.004. Epub 2017 Jul 3.

Abstract

The impact of the matrix polysaccharides on the cellulose microfibrils structure as well as on the mechanical properties of cell walls still remains an open question. Therefore, the aim of investigations was to determine the simultaneous influence of (i) different concentrations of pectins with constant concentration of xyloglucan, and (ii) different concentrations of xyloglucan with constant concentration of pectins on cellulose structure. Composites of bacterial cellulose (BC) produced by Komagataeibacter xylinus are considered to mimic natural plant cell walls. This investigation showed that the lower the ratio of xyloglucan to pectin was, the higher Young's modulus of BC composite was and also obtained cellulose microfibrils were thinner. The increasing concentration of xyloglucan to pectin also caused the drop down in microfibrils crystallinity degree with predominant structure of cellulose I. In that case, also the length of cellulose chains was growing and reaching the highest value among all BC composites.

摘要

基质多糖对纤维素微纤维结构以及细胞壁机械性能的影响仍然是一个悬而未决的问题。因此,研究的目的是确定(i)果胶浓度不变时不同浓度的果胶,以及(ii)木葡聚糖浓度不变时不同浓度的木葡聚糖对纤维素结构的同时影响。由 Komagataeibacter xylinus 产生的细菌纤维素 (BC) 复合材料被认为可以模拟天然植物细胞壁。这项研究表明,木葡聚糖与果胶的比例越低,BC 复合材料的杨氏模量越高,并且获得的纤维素微纤维越细。木葡聚糖浓度的增加也导致纤维素微纤维结晶度下降,纤维素 I 的结构占主导地位。在这种情况下,纤维素链的长度也在增长,并在所有 BC 复合材料中达到最高值。

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