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基于不同结构聚合物网络的磁活性弹性体的磁可调表面粗糙度和疏水性

Magneto-Tunable Surface Roughness and Hydrophobicity of Magnetoactive Elastomers Based on Polymer Networks with Different Architectures.

作者信息

Kirgizov Sobit E, Kostrov Sergey A, Kramarenko Elena Yu

机构信息

Engineering Physics Institute, Samarkand State University named after Sharof Rashidov, Samarkand 140104, Uzbekistan.

Faculty of Physics, Lomonosov Moscow State University, 119991 Moscow, Russia.

出版信息

Polymers (Basel). 2025 Sep 4;17(17):2411. doi: 10.3390/polym17172411.

Abstract

In this study, we present experimental investigations of the surface structure and water contact angles of magnetoactive elastomers (MAEs), which are controlled by an external magnetic field. Specifically, we examine how the polymer matrix architecture affects the surface roughness and wettability of MAEs in various magnetic fields. We performed a comparative analysis on MAEs based on a linear polysiloxane network and on a matrix of the same chemical nature containing side-grafted chains. We synthesized a series of magnetoactive elastomers containing 75 wt.% carbonyl iron and varying amounts of a low-molecular-weight plasticizer. Although the magnetorheological effect is higher for traditional linear MAEs, we found that the magnetic response in surface properties is higher for novel MAEs with side-grafted chains. The largest increase in water contact angle was observed in the side-chain MAEs with the highest 60 wt.% plasticizer content: rising from 112° in a zero field to 168° in a 490 mT magnetic field. Water contact angles exhibit greater stability over time for side-chain MAEs, and this stability further increases in the presence of a magnetic field. Our results demonstrate that the architecture of the polymer matrix serves as an effective tool for designing smart, magnetically responsive surfaces.

摘要

在本研究中,我们展示了对磁活性弹性体(MAEs)表面结构和水接触角的实验研究,这些特性由外部磁场控制。具体而言,我们研究了聚合物基体结构如何在不同磁场中影响MAEs的表面粗糙度和润湿性。我们对基于线性聚硅氧烷网络的MAEs以及含有侧接枝链且化学性质相同的基体进行了对比分析。我们合成了一系列含有75 wt.%羰基铁和不同含量低分子量增塑剂的磁活性弹性体。尽管传统线性MAEs的磁流变效应更高,但我们发现具有侧接枝链的新型MAEs在表面性质方面的磁响应更高。在增塑剂含量最高达60 wt.%的侧链MAEs中观察到水接触角的最大增加:从零磁场下的112°升至490 mT磁场下的168°。侧链MAEs的水接触角随时间表现出更大的稳定性,并且在磁场存在时这种稳定性进一步增强。我们的结果表明,聚合物基体结构是设计智能磁响应表面的有效工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a32b/12431539/40287579e4e7/polymers-17-02411-g001.jpg

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