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由二氧化硅纳米粒子与常规两性离子表面活性剂组合稳定的 pH 响应性 Pickering 乳液。

pH-Responsive Pickering Emulsions Stabilized by Silica Nanoparticles in Combination with a Conventional Zwitterionic Surfactant.

机构信息

The Key Laboratory of Food Colloids and Biotechnology, Ministry of Education, School of Chemical and Material Engineering, Jiangnan University , 1800 Lihu Road, Wuxi, Jiangsu 214122, P. R. China.

School of Mathematics and Physical Sciences, University of Hull , Hull HU6 7RX, U.K.

出版信息

Langmuir. 2017 Mar 7;33(9):2296-2305. doi: 10.1021/acs.langmuir.6b04459. Epub 2017 Feb 24.

Abstract

pH-responsive oil-in-water Pickering emulsions were prepared simply by using negatively charged silica nanoparticles in combination with a trace amount of a zwitterionic carboxyl betaine surfactant as stabilizer. Emulsions are stable to coalescence at pH ≤ 5 but phase separate completely at pH > 8.5. In acidic solution, the carboxyl betaine molecules become cationic, allowing them to adsorb on silica nanoparticles via electrostatic interactions, thus hydrophobizing and flocculating them and enhancing their surface activity. Upon increasing the pH, surfactant molecules are converted to zwitterionic form and significantly desorb from particles' surfaces, triggering dehydrophobization and coalescence of oil droplets within the emulsion. The pH-responsive emulsion can be cycled between stable and unstable many times upon alternating the pH of the aqueous phase. The average droplet size in restabilized emulsions at low pH, however, increases gradually after four cycles due to the accumulation of NaCl. Experimental evidence including adsorption isotherms, zeta potentials, microscopy, and three-phase contact angles is given to support the postulated mechanisms.

摘要

pH 响应型油包水 Pickering 乳液可通过使用带负电荷的二氧化硅纳米粒子与痕量两性离子羧基甜菜碱表面活性剂作为稳定剂来简单制备。在 pH≤5 时,乳液对聚结稳定,但在 pH>8.5 时完全相分离。在酸性溶液中,羧基甜菜碱分子变为阳离子,可通过静电相互作用吸附在二氧化硅纳米粒子上,从而使它们疏水并絮凝,并提高其表面活性。当 pH 增加时,表面活性剂分子转化为两性离子形式,并从粒子表面显著解吸,引发乳液中油滴的去疏水性和聚结。通过交替水相的 pH 值,pH 响应乳液可以在稳定和不稳定之间循环多次。然而,在经过四个循环后,由于 NaCl 的积累,在低 pH 值下再稳定乳液中的平均液滴尺寸逐渐增加。包括吸附等温线、动电位、显微镜和三相接触角在内的实验证据支持所提出的机制。

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