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Dielectric and optical properties of alumina and silica nanoparticles dispersed poly(methyl methacrylate) matrix-based nanocomposites for advanced polymer technologies

机译:氧化铝和二氧化硅纳米颗粒分散的聚(甲基丙烯酸甲酯)基基纳米复合材料的氧化铝和光学性能,用于高分子化技术

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摘要

Dielectric behaviour of the polymer nanocomposite (PNC) films comprise alumina (Al2O3) and silica (SiO2) nanoparticles (1, 3, and 5 wt%) dispersed in poly(methyl methacrylate) (PMMA) matrix was investigated in the frequency span of 20 Hz to 1 MHz at 30 degrees C and also with temperature variation (30-60 degrees C) for the 3 wt% nanofillers containing PNC films. Some changes in the dielectric permittivity and electrical conductivity were observed with the increase of nanofiller content, frequency variation, and rise in temperature of these films. Electric modulus spectra confirmed a broad relaxation peak at the lower frequencies for the Al2O3 loaded PNC films which attribute to the PMMA bulky side ester groups rotation, whereas this relaxation was not observed for the SiO2 filled PNC films in the same experimental frequency range. The UV-Vis absorbance, transmittance, and reflectance spectra of these PNCs showed a gradual variation with the increase of Al2O3 and SiO2 contents in the films. The energy bandgap decreases, whereas the Urbach energy, refractive indices, and optical conductivity enhance with the increase of filler concentration in these composites. The X-ray diffraction (XRD) study revealed the predominantly amorphous nature of these materials and the homogeneity of the hybrid was evidenced by their SEM images. The energy dispersive X-Ray (EDX) mapping revealed the purity of these hybrid composites. The results demonstrated that these PNC films are low permittivity polymeric nanodielectrics (PNDs), and their controllable optical parameters with the filler contents could be technologically important in the design and development of some advanced microelectronic and optoelectronic devices.
机译:研究了分散在聚甲基丙烯酸甲酯(PMMA)基体中的由氧化铝(Al2O3)和二氧化硅(SiO2)纳米颗粒(1、3和5 wt%)组成的聚合物纳米复合材料(PNC)薄膜的介电性能,研究了在30℃下,在20 Hz至1 MHz的频率范围内,以及含有PNC薄膜的3 wt%纳米填料的温度变化(30-60℃)。随着纳米填料含量的增加、频率的变化和温度的升高,这些薄膜的介电常数和电导率发生了一些变化。电模量谱证实了负载Al2O3的PNC薄膜在较低频率处有一个宽的弛豫峰,这归因于PMMA粗大的侧酯基旋转,而在相同的实验频率范围内,填充SiO2的PNC薄膜没有观察到这种弛豫。随着薄膜中Al2O3和SiO2含量的增加,这些PNC的紫外-可见吸收光谱、透射光谱和反射光谱逐渐变化。随着填料浓度的增加,复合材料的能带隙减小,而Urbach能、折射率和光导率增加。X射线衍射(XRD)研究揭示了这些材料的主要非晶态性质,其SEM图像证明了杂化物的均匀性。能量色散X射线(EDX)图谱显示了这些杂化复合材料的纯度。结果表明,这些PNC薄膜是低介电常数的聚合物纳米电介质(PND),其随填料含量变化的可控光学参数在一些先进微电子和光电子器件的设计和开发中具有重要的技术意义。

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