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Thermal, Magnetic and Electrical Properties of PMMA Nanocomposites with Manganese and Zinc Ferrite Nanoparticles and Their Functionalization

机译:PMMA纳米复合材料的热,磁性和电性能,带有锰和锌铁氧体纳米颗粒及其功能化

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摘要

Manganese (MnFe2O4) and zinc (ZnFe2O4) ferrite nanoparticles were synthesized by the combustion method. Furthermore, the modification of these particles with a silane compound was performed. Thus, the particles produced were analyzed for morphology using Scanning electron microscopy (SEM), thermal stability, and composition assisted by Thermogravimetric analysis (TGA). It is noteworthy that the present work used an unprecedented Far-Fourier-transform infrared spectroscopy (Far-FTIR) technique to differentiate the types of ferrites and their surface functionalization, as it is a simpler, more efficient, and high-resolution method. It is worth mentioning that there are few comparative studies of zinc and manganese ferrites in the literature, much less distinguishing these ferrites simply and efficiently. In addition, there is also a lack of scientific knowledge about its chemical functionalization as compatibili-zation, especially silanization. Novel PMMA nanocomposites were prepared with the different synthesized particles in the contents from 0.1% to 1.0wt.% by the in situ polymerization technique. The nanocomposites were characterized by the analysis of SEM, TGA, Differential scanning calorimetry (DSC), and FTIR mainly by their morphology, thermal resistance, glass transition temperature, proving the chemical interactions, electrical conductivity, capacitance, and dielectric constant. Furthermore, it was evidenced that, in addition to the improvements in thermal, electrical, and interface properties, the produced nanocomposites showed excellent electromagnetic shielding properties even at low filler contents. It is noteworthy that the capacitance increases 63% for the composite with 1.0% zinc ferrite and 43% for manganese ferrite. Also, the electromagnetic absorption results proved that even the low filler contents tested in this work, up to 1.0%, presented an excellent potential for applying as electromagnetic shielding materials, reaching up to 70% attenuation with the use of zinc ferrite. Both ferrites showed excellent results, even superior to those found in the literature for other particles with the same purposes, and still needed a lower content to achieve excellent results.
机译:锰(MNFE2O4)和锌(ZnFe2O4)铁素纳米颗粒通过燃烧法合成。此外,对这些颗粒用硅烷化合物进行了修饰。因此,使用扫描电子显微镜(SEM),热稳定性和由热重分析(TGA)辅助的组成分析了产生的颗粒。值得注意的是,目前的工作使用了前所未有的远古转化红外光谱(FAR-FTR)技术来区分铁素体类型及其表面功能,因为它是一种更简单,更有效,更高效和高分辨率的方法。值得一提的是,文献中很少有锌和锰铁氧体的比较研究,更不用说简单有效地区分这些铁素体。此外,还缺乏有关其化学函数化作为兼容化的科学知识,尤其是硅烷化。通过原位聚合技术,用不同的合成颗粒从0.1%至1.0wt。%的不同合成颗粒制备新型PMMA纳米复合材料。纳米复合材料的特征是分析SEM,TGA,差异扫描量热法(DSC)和FTIR,主要通过其形态,热电阻,玻璃过渡温度,证明化学相互作用,电导率,电容和介电常数。此外,有证据表明,除了在热,电气和界面特性的改进外,生产的纳米复合材料甚至在低填充物含量下也显示出出色的电磁屏蔽性能。值得注意的是,该复合材料的电容增加了63%,锌铁酸盐含量为1.0%,锰铁氧体的电容增加了43%。同样,电磁吸收结果证明,即使在这项工作中测试的低填充物(高达1.0%)也具有极大的潜力,可作为电磁屏蔽材料涂抹,使用锌铁酸盐使用锌,最多达到70%的衰减。两种铁氧体的效果都出色,甚至优于文献中针对具有相同目的的其他颗粒的结果,并且仍然需要较低的含量才能获得出色的结果。

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