Impact of water and oleic acid on glycerol monooleate phase transition and bi-continuous structure formation in white oil†

IF 2.9 3区 化学 Q3 CHEMISTRY, PHYSICAL
Soft Matter Pub Date : 2024-08-30 DOI:10.1039/D4SM00809J
Ngoc A. Nguyen, Deborah Y. Liu and Daniel V. Krogstad
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Abstract

Production of biofuels from biological feedstocks, such as soybean oil, is an important piece of the transition to renewable energy sources. Processes have been developed to co-refine these feedstocks with traditional feedstocks, however, the high concentration of polar functional groups in biofeedstocks can cause a wide range of intermediate chemical reactions and interactions. An improved understanding of the interactions of biofeedstocks and their degradation products is needed to continue to expand the usage of biofeedstocks in fuel production. In this study, the equilibrium structures of glycerol monooleate (GMO), a common intermediate product of biofeedstock processing, in white mineral oil at a wide range of compositions, temperatures, and additional byproduct concentrations (water and/or oleic acid) were characterized using small angle X-ray scattering (SAXS). It was determined that GMO can exist as crystalline aggregates in white oil or as reverse micelles depending on the concentration and temperature. The critical micelle temperature increases significantly with increasing GMO concentration but remains relatively stable with increasing water or fatty acid concentration. Fitting of the SAXS data revealed that for many compositions, the GMO formed roughly spherical reverse micelles, however, at high water concentrations (∼1 wt%), the GMO formed elongated reverse micelles. Additionally, when >1 wt% oleic acid was added to the system, bi-continuous structures were stabilized rather than discreet reverse micelles. These results help increase our understanding of the structural behavior of biofeedstock intermediate products at concentrations and temperatures relevant to biofuel production and can enable processers to design systems and products that can either leverage or prevent these interactions for improved processing performance.

Abstract Image

Abstract Image

水和油酸对甘油单油酸酯相变和白油中双连续结构形成的影响
利用大豆油等生物原料生产生物燃料是向可再生能源过渡的重要一环。然而,生物原料中高浓度的极性官能团会引起一系列中间化学反应和相互作用。为了继续扩大生物原料在燃料生产中的应用,需要进一步了解生物原料及其降解产物之间的相互作用。在本研究中,使用小角 X 射线散射 (SAXS) 技术表征了甘油单油酸酯(GMO)的平衡结构,这是生物原料加工过程中常见的中间产物,在白矿物油中的成分、温度和额外副产品浓度(水和/或油酸)范围很广。结果表明,根据浓度和温度的不同,GMO 在白油中可以晶体聚集体的形式存在,也可以反向胶束的形式存在。临界胶束温度会随着 GMO 浓度的增加而显著升高,但会随着水或脂肪酸浓度的增加而保持相对稳定。对 SAXS 数据进行拟合后发现,在许多成分中,GMO 形成了大致球形的反胶束,但在水浓度较高(∼1 wt%)时,GMO 形成了拉长的反胶束。此外,当向体系中添加 >1 wt% 的油酸时,稳定的是双连续结构,而不是分散的反向胶束。这些结果有助于加深我们对生物原料中间产物在生物燃料生产相关浓度和温度下的结构行为的理解,并使加工人员能够设计出利用或防止这些相互作用的系统和产品,从而提高加工性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Soft Matter
Soft Matter 工程技术-材料科学:综合
CiteScore
6.00
自引率
5.90%
发文量
891
审稿时长
1.9 months
期刊介绍: Where physics meets chemistry meets biology for fundamental soft matter research.
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