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Broadband Electromagnetic Response and Enhanced Microwave Absorption in Carbon Black and Magnetic Fe3O4 Nanoparticles Reinforced Polyvinylidenefluoride Composites

机译:碳黑色和磁Fe3O4纳米粒子增强聚偏二氟化物复合材料宽带电磁响应和增强的微波吸收

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摘要

High-efficiency Electromagnetic Interference (EMI) shielding materials are essential in the harsh environment created by unwanted electromagnetic (EM) signals. In this work, polyvinylidenefluoride (PVDF) composites reinforced with magnetic Fe3O4 nanoparticles and cost-effective conducting carbon black (CB) were derived by a solution mixing and coagulation method. Coagulation is found to be an effective method to fabricate uniform composites of materials having higher tendency to form aggregates. The three-dimensionally extending conducting network created by CB and the hopping electrons from Fe3O4 result in high electrical conductivity of PVDF/CB/Fe3O4 composites (PCF). The permittivity, permeability and impedance spectra in the 10 MHz-1 GHz broadband region indicate that dielectric loss is dominating over magnetic loss and is attributed to the collection of a large number of capacitive regions at the interfaces formed by CB and Fe3O4, which results in the enhanced interfacial polarization losses in PCF composites. The composites exhibit EMI shielding effectiveness (EMI SE) greater than 20 dB and their shielding mechanisms involve dielectric losses, magnetic losses and their synergistic interaction. The matching input impedance of the composites allows the radiations to enter into the material and it undergoes multiple internal reflections at the interfaces and the energy of the internally reflected radiation is subsequently absorbed by CB. These different mechanisms result in an absorption dominated EMI shielding with a total EMI SE of 55.3 dB (99.9997% of shielding) for PCF-40 composite having thickness 2 mm and an average skin depth of 0.37 mm in the X-band microwave region.
机译:高效电磁干扰(EMI)屏蔽材料在由不需要的电磁(EM)信号产生的恶劣环境中是必不可少的。在这项工作中,通过溶液混合和凝固方法衍生利用磁Fe3O4纳米颗粒增强和成本有效的导电炭黑(CB)增强的聚偏二氟化物(PVDF)复合材料。发现凝结是制造具有更高倾向于形成聚集体的材料均匀复合材料的有效方法。由Cb产生的三维延伸的传导网络和来自Fe3O4的跳跃电子导致PVDF / CB / Fe3O4复合材料(PCF)的高导电性。 10MHz-1GHz宽带区域中的介电常数,渗透率和阻抗谱表明介电损耗在磁损失上占据主导,并且归因于CB和FE3O4形成的界面上的大量电容区域的集合,这导致PCF复合材料中增强的界面偏振损耗。复合材料表现出大于20dB的EMI屏蔽有效性(EMI SE),其屏蔽机构涉及介电损耗,磁损失及其协同相互作用。复合材料的匹配输入阻抗允许辐射进入材料,并且它在接口处经历多个内部反射,并且随后被Cb吸收内部反射辐射的能量。这些不同的机制导致吸收计数的EMI屏蔽,其总EMI SE为55.3dB(99.9997%的屏蔽),用于PCF-40复合材料,X频带微波区域在X频带微波区域中的平均肤色深度为0.37mm。

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