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温度控制的聚(丙二醇)疏水性对与改性环糊精形成包合复合物的影响。DSC 和 ITC 研究。

Temperature-controlled poly(propylene) glycol hydrophobicity on the formation of inclusion complexes with modified cyclodextrins. A DSC and ITC study.

机构信息

Dipartimento di Chimica S. Cannizzaro, Università degli Studi di Palermo, Viale delle Scienze, pad. 17, Parco D'Orleans II, 90128 Palermo, Italy.

出版信息

Phys Chem Chem Phys. 2011 Jul 21;13(27):12571-7. doi: 10.1039/c1cp20737g. Epub 2011 Jun 13.

DOI:10.1039/c1cp20737g
PMID:21666930
Abstract

The study highlighted the main forces driving the formation of hydroxypropyl-cyclodextrins (HP-CDs) + poly(propylene) glycol 725 g mol(-1) inclusion complexes. The temperature parameter was chosen as the variable to modulate the hydrophobicity of the polymer, and consequently ITC experiments as functions of temperature as well as DSC measurements were done in a systematic way. The polymer is not included into HP-α-CD, it is strongly bound to HP-β-CD and it is floating in HP-γ-CD. The stability of the inclusion complexes is entropy controlled. The gain of the entropy is a unique result compared to the opposite literature findings for inclusion complexes based on polymers and CDs. This peculiarity is ascribable to the removal of water molecules from cages during complexation and this effect compensates the entropy loss due to constraints caused by the CD threading. In spite the host-guest van der Waals contacts are optimized, the enthalpies for the inclusion complex formation are positive and reveal the large heat required for dehydrating the propylene oxide units. All the macrocycles enhanced the polymer solubility in water. Increasing the affinity of the macrocycle to the macromolecule makes more expanded the one-phase area of the binodal curve. A new thermodynamic approach was proposed to predict quantitatively the binodal curve as well as the dependence of the enthalpy of separation phase on the macrocycle composition. The agreement between the experimental data and the computed values was excellent.

摘要

该研究强调了形成羟丙基-环糊精(HP-CDs)+聚丙二醇 725g/mol 包合物的主要驱动力。温度参数被选为调节聚合物疏水性的变量,因此以温度为函数的 ITC 实验以及 DSC 测量被系统地进行。该聚合物不被 HP-α-CD 包合,它与 HP-β-CD 强烈结合,在 HP-γ-CD 中漂浮。包合物的稳定性受熵控制。与基于聚合物和 CD 的包合物的相反文献发现相比,熵的增加是一个独特的结果。这种特殊性归因于在络合过程中从笼中除去水分子,并且该效果补偿了由于 CD 穿线引起的约束引起的熵损失。尽管主体-客体范德华接触得到了优化,但包合物形成的焓是正值,这表明需要大量热量来脱水氧化丙烯单元。所有大环都增强了聚合物在水中的溶解度。大环对大分子的亲和力增加,使双节线曲线的单相区域更加扩展。提出了一种新的热力学方法来定量预测双节线曲线以及分离相焓与大环组成的关系。实验数据与计算值之间的一致性非常好。

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