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多糖基聚两性电解质复合物的形成:研究链内相互作用的作用。

Polysaccharide-based polyampholyte complex formation: Investigating the role of intra-chain interactions.

机构信息

Polymer and Color Engineering Department, Amirkabir University of Technology, Tehran, Iran.

Polymer and Color Engineering Department, Amirkabir University of Technology, Tehran, Iran.

出版信息

Carbohydr Polym. 2023 Aug 1;313:120836. doi: 10.1016/j.carbpol.2023.120836. Epub 2023 Mar 23.

Abstract

The difference in inter-chain and intra-chain electrostatic attraction was investigated in polyelectrolyte and polyampholyte electrostatic complex formation. Three polymers with similar backbone molecular structures including chitosan (Ch) polycation, carboxymethyl cellulose (CMCe) polyanion, and carboxymethyl chitosan (CMCh) polyampholyte were used for this purpose. The turbidimetric, water content, and rheological measurements for polyampholyte self-complex showed more dependence on the ionic strength rather than the polyelectrolyte one. The degree of dissociation (α), dissociation constant (pKa), and intrinsic persistence length were calculated by applying the Katchalsky-Lifson model to potentiometric data. We studied the gyration radii as a function of Debye length and observed the polyampholyte chain contractions due to the intra-chain electrostatic attractions, which minimize the entropic gain of the inter-chain complex formation. This is in accordance with the decrease in pKa by α for CMCh which is the opposite of that for the Ch and CMCe samples. We also found that the polyampholyte has less intrinsic and electrostatic persistence length compared with both polyanion and polycation with similar chain structures indicating the impact of the inter-chain electrostatic interaction on the complex properties. This study deepens our insight about the behavior of CMCh and the nature of difference between CMCh and Ch/CMCe electrostatic complexes.

摘要

研究了聚电解质和聚两性电解质静电复合物形成中链间和链内静电吸引的差异。使用了三种具有相似骨架分子结构的聚合物,包括壳聚糖(Ch)聚阳离子、羧甲基纤维素(CMCe)聚阴离子和羧甲基壳聚糖(CMCh)聚两性电解质。聚两性电解质自复合物的浊度、含水量和流变学测量更依赖于离子强度而不是聚电解质。通过将 Katchalsky-Lifson 模型应用于电位数据,计算了离解度(α)、离解常数(pKa)和固有持久长度。我们研究了旋转半径作为德拜长度的函数,并观察到由于链内静电吸引导致聚两性电解质链收缩,从而最小化了链间复合物形成的熵增益。这与 CMCh 的 pKa 随α的减小一致,而 Ch 和 CMCe 样品则相反。我们还发现,与具有相似链结构的聚阴离子和聚阳离子相比,聚两性电解质的固有和静电持久长度较小,这表明链间静电相互作用对复合物性质的影响。这项研究加深了我们对 CMCh 行为和 CMCh 与 Ch/CMCe 静电复合物之间差异性质的认识。

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