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基于多孔羧基功能化聚三苯胺的电流变流体

Electrorheological Fluids Based on Porous Carboxyl-Functionalized Polytriphenylamines.

作者信息

Erol Ozlem, Karatayeva Ulzhalgas, Faul Charl F J

机构信息

Chemistry Department, Science Faculty, Gazi University, 06560 Ankara, Turkey.

School of Chemistry, University of Bristol, Bristol BS8 1TS, U.K.

出版信息

ACS Appl Polym Mater. 2025 Jan 25;7(3):1205-1216. doi: 10.1021/acsapm.4c02469. eCollection 2025 Feb 14.

Abstract

Electrorheological fluids (ER) make up a class of smart materials that are distinguished by their capacity to alter their rheological characteristics in a controlled and reversible manner in response to an externally applied electric field (). As an inherent polarizable anhydrous ER-active material, polyaniline (PAni)-based materials are among the most frequently utilized ER-active materials. However, PAni can only be used as an ER-active material after carefully adjusting its conductivity to an appropriate range. Three-dimensional (3D) conjugated microporous polymer (CMP) analogs of PAni have a nitrogen-rich porous and hierarchical structure, low density, and appropriate conductivity that can be used to explore ER performance and dispersion stability. In this study, a carboxylic acid functionalized version with a greater polar porous surface was designed to obtain higher polarizability and appropriate conductivity without the need for any dedoping process and thus enhanced ER performance. For this purpose, polytriphenylamine (PTPA) and an extended carboxylic-acid-functionalized PTPA (PTPA-COOH) were synthesized as ER-active materials by Buchwald-Hartwig cross-coupling. The structural, morphological, electrical, microstructural, and surface properties were investigated in detail before the ER performance was determined. Dispersions of the CMPs were prepared in silicon oil and examined under different values by measuring shear stress, shear viscosity, and moduli values. PTPA-COOH dispersion with 10 wt % concentration exhibited excellent dispersion stability of 99% and enhanced ER performance, including high shear stress (static yield stress of 370 Pa at 3.5 kV/mm), repeatable and reversible electric field response, and obvious dielectric loss peak (relaxation time of 0.01 s). This class of functionalized 3D analogs of PAni shows significant promise as ER-active materials for applications in smart fluids.

摘要

电流变液(ER)是一类智能材料,其特点是能够在外部施加电场的作用下,以可控且可逆的方式改变其流变特性。作为一种固有的可极化无水电流变活性材料,聚苯胺(PAni)基材料是最常用的电流变活性材料之一。然而,PAni只有在将其电导率仔细调整到适当范围后才能用作电流变活性材料。PAni的三维(3D)共轭微孔聚合物(CMP)类似物具有富含氮的多孔和分级结构、低密度以及可用于探索电流变性能和分散稳定性的适当电导率。在本研究中,设计了一种具有更大极性多孔表面的羧酸官能化版本,以在无需任何去掺杂过程的情况下获得更高的极化率和适当的电导率,从而提高电流变性能。为此,通过Buchwald-Hartwig交叉偶联合成了作为电流变活性材料的聚三苯胺(PTPA)和一种扩展的羧酸官能化PTPA(PTPA-COOH)。在确定电流变性能之前,详细研究了其结构、形态、电学、微观结构和表面性质。将CMPs分散在硅油中,并通过测量剪切应力、剪切粘度和模量值在不同值下进行检查。浓度为10 wt%的PTPA-COOH分散体表现出99%的优异分散稳定性和增强的电流变性能,包括高剪切应力(在3.5 kV/mm下静态屈服应力为370 Pa)、可重复和可逆的电场响应以及明显的介电损耗峰(弛豫时间为0.01 s)。这类功能化的PAni 3D类似物作为智能流体应用中的电流变活性材料显示出巨大的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/157d/11833765/73b9469c5d9f/ap4c02469_0008.jpg

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