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基于硬脂酸的油凝胶:分子、热学及力学性能研究

Stearic acid based oleogels: a study on the molecular, thermal and mechanical properties.

作者信息

Sagiri S S, Singh Vinay K, Pal K, Banerjee I, Basak Piyali

机构信息

Department of Biotechnology and Medical Engineering, National Institute of Technology, Rourkela 769008, India.

Department of Biotechnology and Medical Engineering, National Institute of Technology, Rourkela 769008, India.

出版信息

Mater Sci Eng C Mater Biol Appl. 2015 Mar;48:688-99. doi: 10.1016/j.msec.2014.12.018. Epub 2014 Dec 9.

Abstract

Stearic acid and its derivatives have been used as gelators in food and pharmaceutical gel formulations. However, the mechanism pertaining to the stearic acid based gelation has not been deciphered yet. Keeping that in mind, we investigated the role of stearic acid on physic-chemical properties of oleogel. For this purpose, two different oil (sesame oil and soy bean oil) formulations/oleogels were prepared. In depth analysis of gel kinetics, gel microstructure, molecular interactions, thermal and mechanical behaviors of the oleogels were done. The properties of the oleogels were dependent on the type of the vegetable oil used and the concentration of the stearic acid. Avrami analysis of DSC thermograms indicated that heterogeneous nucleation was coupled with the one-dimensional growth of gelator fibers as the key phenomenon in the formation of oleogels. Viscoelastic and pseudoplastic nature of the oleogels was analyzed in-depth by fitting the stress relaxation data in modified Peleg's model and rheological studies, respectively. Textural studies have revealed that the coexistence of hydrogen bond dissipation and formation of new bonds is possible under stress conditions in the physical oleogels.

摘要

硬脂酸及其衍生物已被用作食品和药物凝胶制剂中的凝胶剂。然而,基于硬脂酸的凝胶化机制尚未被破解。考虑到这一点,我们研究了硬脂酸对油凝胶物理化学性质的作用。为此,制备了两种不同的油(芝麻油和大豆油)配方/油凝胶。对油凝胶的凝胶动力学、凝胶微观结构、分子相互作用、热行为和力学行为进行了深入分析。油凝胶的性质取决于所用植物油的类型和硬脂酸的浓度。差示扫描量热法(DSC)热谱图的阿弗拉米分析表明,非均相成核与凝胶剂纤维的一维生长相结合是油凝胶形成过程中的关键现象。分别通过将应力松弛数据拟合到修正的佩莱格模型和流变学研究中,深入分析了油凝胶的粘弹性和假塑性性质。质地研究表明,在物理油凝胶的应力条件下,氢键耗散和新键形成可能同时存在。

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