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通过顺序筛选静电斥力和热诱导液桥来调整纳米乳液凝胶的材料性能。

Tuning Material Properties of Nanoemulsion Gels by Sequentially Screening Electrostatic Repulsions and Then Thermally Inducing Droplet Bridging.

机构信息

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.

Department of Materials, ETH Zürich, 8093 Zürich, Switzerland.

出版信息

Langmuir. 2020 Apr 7;36(13):3346-3355. doi: 10.1021/acs.langmuir.0c00199. Epub 2020 Mar 27.

Abstract

Nanoemulsions are widely used in applications such as food products, cosmetics, pharmaceuticals, and enhanced oil recovery for which the ability to engineer material properties is desirable. Moreover, nanoemulsions are emergent model colloidal systems because of the ease in synthesizing monodisperse samples, flexibility in formulations, and tunable material properties. In this work, we study a nanoemulsion system previously developed by our group in which gelation occurs through thermally induced polymer bridging of droplets. We show here that the same system can undergo a sol-gel transition at room temperature through the addition of salt, which screens the electrostatic interaction and allows the system to assemble via depletion attraction. We systematically study how the addition of salt followed by a temperature jump can influence the resulting microstructures and rheological properties of the nanoemulsion system. We show that the salt-induced gel at room temperature can dramatically restructure when the temperature is suddenly increased and achieves a different gelled state. Our results offer a route to control the material properties of an attractive colloidal system by carefully tuning the interparticle potentials and sequentially triggering the colloidal self-assembly. The control and understanding of the material properties can be used for designing hierarchically structured hydrogels and complex colloid-based materials for advanced applications.

摘要

纳米乳液广泛应用于食品、化妆品、制药和提高石油采收率等领域,这些领域需要能够设计材料性能的能力。此外,由于易于合成单分散样品、配方灵活和可调材料性能,纳米乳液是新兴的胶体模型系统。在这项工作中,我们研究了我们小组之前开发的一种纳米乳液体系,其中凝胶化是通过液滴的热诱导聚合物桥接发生的。我们在这里表明,相同的体系可以通过添加盐来进行室温下的溶胶-凝胶转变,这可以屏蔽静电相互作用并允许体系通过耗尽吸引力进行组装。我们系统地研究了添加盐后再进行温度跳跃如何影响纳米乳液体系的微结构和流变性能。我们表明,当温度突然升高时,室温下盐诱导的凝胶可以剧烈重构,并达到不同的凝胶状态。我们的结果为通过仔细调整粒子间势并顺序触发胶体自组装来控制有吸引力的胶体系统的材料性能提供了一种途径。对材料性能的控制和理解可用于设计用于高级应用的分级结构水凝胶和复杂基于胶体的材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/71de/7311086/1dc651aee400/la0c00199_0001.jpg

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