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氟碳和碳氢表面活性剂混合物中囊泡的相行为、流变性质和转变相。

Phase behavior, rheological property, and transmutation of vesicles in fluorocarbon and hydrocarbon surfactant mixtures.

机构信息

School of Chemistry and Pharmaceutical Engineering, Shandong Polytechnic University, Jinan 250353, People's Republic of China.

出版信息

Langmuir. 2012 Jun 26;28(25):9355-64. doi: 10.1021/la301416e. Epub 2012 Jun 11.

Abstract

We present a detailed study of a salt-free cationic/anionic (catanionic) surfactant system where a strongly alkaline cationic surfactant (tetradecyltrimethylammonium hydroxide, TTAOH) was mixed with a single-chain fluorocarbon acid (nonadecafluorodecanoic acid, NFDA) and a hyperbranched hydrocarbon acid [di-(2-ethylhexyl)phosphoric acid, DEHPA] in water. Typically the concentration of TTAOH is fixed while the total concentration and mixing molar ratio of NFDA and DEHPA is varied. In the absence of DEHPA and at a TTAOH concentration of 80 mmol·L(-1), an isotropic L(1) phase, an L(1)/L(α) two-phase region, and a single L(α) phase were observed successively with increasing mixing molar ratio of NFDA to TTAOH (n(NFDA)/n(TTAOH)). In the NFDA-rich region (n(NFDA)/n(TTAOH) > 1), a small amount of excess NFDA can be solubilized into the L(α) phase while a large excess of NFDA eventually leads to phase separation. When NFDA is replaced gradually by DEHPA, the mixed system of TTAOH/NFDA/DEHPA/H(2)O follows the same phase sequence as that of the TTAOH/NFDA/H(2)O system and the phase boundaries remain almost unchanged. However, the viscoelasticity of the samples in the single L(α) phase region becomes higher at the same total surfactant concentration as characterized by rheological measurements. Cryo-transmission electron microscopic (cryo-TEM) observations revealed a microstructural evolution from unilamellar vesicles to multilamellar ones and finally to gaint onions. The size of the vesicle and number of lamella can be controlled by adjusting the molar ratio of NFDA to DEHPA. The dynamic properties of the vesicular solutions have also been investigated. It is found that the yield stress and the storage modulus are time-dependent after a static mixing process between the two different types of vesicle solutions, indicating the occurrence of a dynamic fusion between the two types of vesicles. The microenvironmental changes induced by aggregate transitions were probed by (19)F NMR as well as (31)P NMR measurements. Upon replacement of NFDA by DEHPA, the signal from the (19)F atoms adjacent to the hydrophilic headgroup disappears and that from the (19)F atoms on the main chain becomes sharper. This could be interpreted as an increase of microfluidity in the mixed vesicle bilayers at higher content of DEHPA, whose alkyl chains are expected to have a lower chain melting point. Our results provide basic knowledge on vesicle formation and their structural evolution in salt-free catanionic surfactant systems containing mixed ion pairs, which may contribute to a deeper understanding of the rules governing the formation and properties of surfactant self-assembly.

摘要

我们对一种无盐的阳离子/阴离子(反离子)表面活性剂体系进行了详细研究,其中包含强碱性阳离子表面活性剂(十四烷基三甲基氢氧化铵,TTAOH),与单链全氟羧酸(正十九氟癸酸,NFDA)和超支化烃酸[二(2-乙基己基)磷酸,DEHPA]在水中混合。通常,TTAOH 的浓度是固定的,而 NFDA 和 DEHPA 的总浓度和混合摩尔比是变化的。在没有 DEHPA 且 TTAOH 浓度为 80mmol·L(-1)的情况下,随着 NFDA 与 TTAOH 的混合摩尔比(n(NFDA)/n(TTAOH))的增加,依次观察到各向同性的 L(1)相、L(1)/L(α)两相区和单一的 L(α)相。在 NFDA 丰富的区域(n(NFDA)/n(TTAOH) > 1),少量过量的 NFDA 可以溶解到 L(α)相中,而大量过量的 NFDA 最终导致相分离。当 NFDA 逐渐被 DEHPA 取代时,TTAOH/NFDA/DEHPA/H(2)O 的混合体系遵循与 TTAOH/NFDA/H(2)O 体系相同的相序列,并且相边界几乎保持不变。然而,流变测量表明,在相同的总表面活性剂浓度下,单 L(α)相区域样品的粘弹性更高。低温传输电子显微镜(cryo-TEM)观察揭示了从单层囊泡到多层囊泡再到巨大洋葱的微观结构演变。囊泡的大小和层的数量可以通过调节 NFDA 与 DEHPA 的摩尔比来控制。还研究了囊泡溶液的动态性质。发现两种不同类型的囊泡溶液在静态混合后,屈服应力和储能模量随时间变化,表明两种类型的囊泡之间发生了动态融合。通过(19)F NMR 和(31)P NMR 测量研究了聚集转变引起的微环境变化。随着 NFDA 被 DEHPA 取代,亲水头部附近的(19)F 原子的信号消失,而主链上的(19)F 原子的信号变得更尖锐。这可以解释为在较高 DEHPA 含量下混合囊泡双层中的微观流动性增加,其烷基链的链熔点预计较低。我们的结果提供了无盐反离子表面活性剂体系中包含混合离子对的囊泡形成及其结构演变的基础知识,这可能有助于更深入地了解控制表面活性剂自组装形成和性质的规律。

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