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Effect of microwave absorption study on polyaniline nanocomposites with untreated and treated double wall carbon nanotubes

机译:微波吸收研究对未处理和处理双壁碳纳米管聚苯胺纳米复合材料的影响

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Hexanoic acid (HA) doped polyaniline (PAni) nanocomposites which consist of different contents of untreated double wall carbon nanotubes (u-DWNT) and carboxyl treated DWNT (c-DWNT) with titanium dioxide nanoparticles were successfully prepared using template-free method. Fourier transform infrared, ultraviolet-visible and X-ray diffractometer spectra clearly confirmed the chemical structure of PAni nanocomposites. Thermal stability, morphology, conductivity, magnetic properties and reflection loss of PAni nanocomposites were characterized by thermogravimetric analyzer, field emission scanning electron microscope, four-point probe, vibrating sample magnetometer and microwave vector network analyzer, respectively. From this study, it is shown that electrical conductivity of PAni nanocomposites with u-DWNT possessed higher conductivity (1.23 x 10(-1) to 1.31 x 100 S/cm) compared to c-DWNT (3.43 x 10(-2) to 4.48 x 10(-1)S/cm). PAni/HA/TiO2/DWNT nanocomposites with 20% of c-DWNT have been covered by PAni layers to form the highest amount of nanorods/nanotubes. Hence, it shows high heterogeneity that will enhance the dielectric permittivity and contribute to a more disordered motion of charge carriers along the PAni backbone. Therefore, it will eventually contribute to good microwave absorption and potentially apply as an efficient electromagnetic interference shielding material in cell phones. POLYM. COMPOS., 39:1283-1291, 2018. (c) 2016 Society of Plastics Engineers
机译:使用模板的方法成功地制备了由未处理的双壁碳纳米管(U-DWNT)(U-DWNT)(U-DWNT)(U-DWNT)(U-DWNT)(U-DWNT)和羧基处理的DWNT(C-DWNT)的不同含量组成的己酸(HA)掺杂的聚苯胺(PANI)纳米复合材料。傅里叶变换红外,紫外 - 可见光和X射线衍射仪光谱清楚地证实了PANI纳米复合材料的化学结构。 PANI纳米复合材料的热稳定性,形态,电导率,磁性和反射损失分别是分别的热量分析仪,场发射扫描电子显微镜,四点探针,振动样品磁力计和微波矢量网络分析仪。从本研究开始,与C-DWNT(3.43×10(-2)相比,PANI纳米复合材料具有较高的导电性(1.23×10(-1)至1.31×100s / cm)的电导率4.48 x 10(-1)S / cm)。 PANI / HA / TiO2 / DWNT纳米复合材料具有20%的C-DWNT,由PANI层覆盖,形成最高量的纳米棒/纳米管。因此,它显示出高异质性,其将提高介电介电常数,并有助于沿着粉底骨架的电荷载体的更无序运动。因此,它最终将有助于良好的微波吸收,并且可能作为手机中的有效电磁干扰屏蔽材料。聚合物。 Compos,39:1283-1291,2018。(c)2016年塑料工程师协会

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