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Dielectric relaxation behaviors and dissipation characteristics of colloidal nanocarbon (graphene and CNTs) complex fluids

机译:胶态纳米碳(石墨烯和CNT)复合流体的介电弛豫行为和耗散特性

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摘要

The present article reports the dynamic complex dielectric responses of non-polar nanocolloids of graphene (G) and carbon nanotubes (CNTs). The frequency dependent complex relaxation behaviors of G and CNT colloids were determined in the range of 100 Hz to 3 x 10(5) Hz employing dielectric spectroscopy at a constant temperature. The governing roles of nanostructure concentration, conductivity, frequency, and amplitude variation of the forcing electric field on the dielectric response have been examined. The experimental observations reveal that the presence of G or CNT, as well as their concentrations, significantly governs the overall dielectric responses of the nanocolloids. The dilute and concentrated colloids display grossly distinguishable capacitive and dissipative behaviors, hinting at the major role of concentration regimes on the dielectric behavior of such colloids. In addition, the variation of electric field intensity results in altering the dielectric responses of the colloids, which points at the role of polarization of the nanomaterials on the overall dielectric relaxation. To model the complex dipolar interactions, the classical Havriliak-Negami model is employed and good agreement has been achieved against the experimental observations. It has been observed that increasing nanomaterial concentration and field amplitude has a dominant influence upon the relaxation parameters. Further, the effects of colloidal concentration on the AC and DC conductivity modes have also been analyzed. The conductivity response of the colloids has been explained by appealing to percolation theories. The present article may find strong implications toward the design and development of liquid dielectric based electrical and electronics systems. Published under license by AIP Publishing.
机译:本文报道了石墨烯(G)和碳纳米管(CNT)的非极性纳米胶体的动态复杂介电响应。 G和CNT胶体的频率依赖性复数弛豫行为是在恒定温度下使用介电谱在100 Hz至3 x 10(5)Hz的范围内确定的。研究了纳米结构浓度,电导率,频率和强迫电场幅度变化对介电响应的控制作用。实验观察表明,G或CNT的存在及其浓度显着决定了纳米胶体的整体介电响应。稀胶体和浓胶体表现出明显可区分的电容和耗散行为,这暗示了浓度制度对此类胶体的介电性能的主要作用。另外,电场强度的变化导致胶体的介电响应改变,这指出了纳米材料的极化对整体介电弛豫的作用。为了模拟复杂的偶极相互作用,采用了经典的Havriliak-Negami模型,并且与实验观察结果取得了良好的一致性。已经观察到增加的纳米材料浓度和场振幅对弛豫参数具有主要影响。此外,还分析了胶体浓度对AC和DC电导率模式的影响。胶体的电导率响应已经通过渗流理论得到了解释。本文可能会对基于液体介电的电气和电子系统的设计和开发产生重大影响。由AIP Publishing授权发布。

著录项

  • 来源
    《Journal of Applied Physics》 |2019年第3期|034103.1-034103.11|共11页
  • 作者单位

    Indian Inst Technol Ropar, Dept Mech Engn, Rupnagar 140001, India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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