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交变电场驱动的离子微凝胶自组装:理论、模拟与实验

Self-Assembly of Ionic Microgels Driven by an Alternating Electric Field: Theory, Simulations, and Experiments.

作者信息

Colla Thiago, Mohanty Priti S, Nöjd Sofi, Bialik Erik, Riede Aaron, Schurtenberger Peter, Likos Christos N

机构信息

Instituto de Física , Universidade Federal de Ouro Preto , CEP 35400-000 Ouro Preto , Minas Gerais , Brazil.

Faculty of Physics , University of Vienna , Boltzmanngasse 5 , 1090 Vienna , Austria.

出版信息

ACS Nano. 2018 May 22;12(5):4321-4337. doi: 10.1021/acsnano.7b08843. Epub 2018 Apr 17.

Abstract

The structural properties of a system of ionic microgels under the influence of an alternating electric field are investigated both theoretically and experimentally. This combined investigation aims to shed light on the structural transitions that can be induced by changing either the driving frequency or the strength of the applied field, which range from string-like formation along the field to crystal-like structures across the orthogonal plane. In order to highlight the physical mechanisms responsible for the observed particle self-assembly, we develop a coarse-grained description, in which effective interactions among the charged microgels are induced by both equilibrium ionic distributions and their time-averaged hydrodynamic responses to the applied field. These contributions are modeled by the buildup of an effective dipole moment at the microgels backbones, which is partially screened by their ionic double layer. We show that this description is able to capture the structural properties of this system, allowing for very good agreement with the experimental results. The model coarse-graining parameters are indirectly obtained via the measured pair distribution functions and then further assigned with a clear physical interpretation, allowing us to highlight the main physical mechanisms accounting for the observed self-assembly behavior.

摘要

对交变电场影响下的离子微凝胶系统的结构特性进行了理论和实验研究。这种联合研究旨在阐明通过改变驱动频率或外加电场强度可能引发的结构转变,这些转变范围从沿电场方向的线状结构到垂直平面上的晶体状结构。为了突出导致观察到的粒子自组装的物理机制,我们开发了一种粗粒化描述,其中带电微凝胶之间的有效相互作用由平衡离子分布及其对外加电场的时间平均流体动力学响应共同诱导。这些贡献通过在微凝胶主链上建立有效偶极矩来建模,该偶极矩部分地被其离子双层屏蔽。我们表明,这种描述能够捕捉该系统的结构特性,与实验结果非常吻合。模型的粗粒化参数通过测量的对分布函数间接获得,然后进一步赋予明确的物理解释,使我们能够突出解释观察到的自组装行为的主要物理机制。

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