Multi-Field Processing of Micro-Platelets for Magneto-Active Applications

Md Abdulla Al Masud, Z. Ounaies, P. von Lockette
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引用次数: 3

Abstract

The orientation and spatial distribution of magnetic particles in smart mechano-magnetic composites are key to enhancing their actuation capability. In this study, we present a new experimental approach to tune the orientation and assembly of barium hexaferrite (BHF) micro-platelets in liquid polymers by applying uniform magnetic and alternating current (AC)-electric fields. First, we investigated the assembly of BHFs under different electric field amplitudes and frequencies in the silicone elastomer. After establishing the optimum parameters for electric and magnetic alignment, four different microstructures are fabricated namely (a) random (b) electrically aligned (c) magnetically aligned and (d) simultaneously electrically and magnetically aligned. Finally, microstructural and property characterizations are performed using OM, XRD, SEM, and VSM measurements. Our findings demonstrate that a variety of microstructures can be obtained depending on the nature of the applied external field: in the absence of any field, BHF platelets are organized as small stacks, owing to their intrinsic magnetic polarization. In contrast, application of an electric field creates chain-like structures where the orientation of the BHF stacks inside the chains is random. Application of a magnetic field enhances rotation of the BHF stacks, which are found to rotate inside the chain in directions dictated by the magnetic field. Finally, by applying simultaneous electric and magnetic fields while also tuning the processing parameters, BHF-composite film with a squareness ratio of 0.92 is obtained. In order to further extend the actuation capability of resulting composites, we will also experiment with electroactive polymer matrices such as P(VDF–TrFE–CTFE) terpolymer to fabricate a multiferroic material that can actuate under both electric and magnetic field.
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微血小板磁主动应用的多场处理
智能机械-磁性复合材料中磁性颗粒的取向和空间分布是提高其驱动性能的关键。在这项研究中,我们提出了一种新的实验方法,通过施加均匀的磁场和交流(AC)电场来调整液体聚合物中六铁体钡(BHF)微血小板的取向和组装。首先,我们研究了在不同电场振幅和频率下bhf在有机硅弹性体中的组装。在确定了电定向和磁定向的最佳参数后,制作了四种不同的微结构,即(a)随机(b)电定向(c)磁定向和(d)同时电和磁定向。最后,通过OM, XRD, SEM和VSM测量进行了微观结构和性能表征。我们的研究结果表明,根据所施加的外场的性质,可以获得各种微观结构:在没有任何场的情况下,BHF血小板由于其固有的磁极化而组织成小堆栈。相反,施加电场会产生链状结构,其中链内BHF堆栈的方向是随机的。磁场的作用增强了BHF堆的旋转,发现BHF堆在链内按磁场指示的方向旋转。最后,通过同时施加电场和磁场并调整工艺参数,获得了方形比为0.92的bhf复合薄膜。为了进一步扩展复合材料的驱动能力,我们还将实验电活性聚合物基体,如P(VDF-TrFE-CTFE)三元聚合物,以制造一种可以在电场和磁场下驱动的多铁性材料。
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