Dkhilalli F, Megdiche Borchani S, Rasheed M, Barille R, Shihab S, Guidara K, Megdiche M
Faculty of Sciences, Laboratory of Spectroscopic Characterization and Optical Materials, University of Sfax, BP 1171, 3000 Sfax, Tunisia.
MOLTECH-Anjou, University of Angers/UMR CNRS 6200, 2 Boulevard Lavoisier, 49045 Angers, France.
R Soc Open Sci. 2018 Aug 8;5(8):172214. doi: 10.1098/rsos.172214. eCollection 2018 Aug.
A solid-state reaction technique was used to synthesize polycrystalline NaWO. Preliminary X-ray studies revealed that the compound has a cubic structure at room temperature. The formation of the compound has been confirmed by X-ray powder diffraction studies and Raman spectroscopy. Electrical and dielectric properties of the compound have been studied using complex impedance spectroscopy in the frequency range 209 Hz-1 MHz and temperature range 586-679 K. The impedance data were modellized by an equivalent circuit consisting of series of a combination of grains and grains boundary. We use complex electrical modulus * at various temperatures to analyse dielectric data. The modulus plots are characterized by the presence of two relaxation peaks thermally activated. The morphologies and the average particle size of the resultant sodium tungstate sample were demonstrated by atomic force microscopy, scanning electron microscopy and transmission electron microscopy. The thicknesses and optical constants of the sample have been calculated using ellipsometric measurements in the range of 200-22 000 nm by means of new amorphous dispersion formula which is the objective of the present work. The results were obtained for NaWO particles from experimental (EXP) and measured (FIT) data showed an excellent agreement. In addition, the energy gap of the NaWO sample has been determined using ellipsometry and confirmed by spectrophotometry measurements.
采用固态反应技术合成了多晶NaWO。初步的X射线研究表明,该化合物在室温下具有立方结构。通过X射线粉末衍射研究和拉曼光谱证实了该化合物的形成。使用复阻抗谱在209 Hz - 1 MHz频率范围和586 - 679 K温度范围内研究了该化合物的电学和介电性能。阻抗数据由包含晶粒和晶界组合的串联等效电路进行建模。我们在不同温度下使用复电模量*来分析介电数据。模量图的特征是存在两个热激活的弛豫峰。通过原子力显微镜、扫描电子显微镜和透射电子显微镜展示了所得钨酸钠样品的形貌和平均粒径。利用椭圆偏振测量,借助新的非晶色散公式(这是本工作的目标)在200 - 22000 nm范围内计算了样品的厚度和光学常数。从实验(EXP)和测量(FIT)数据获得的NaWO颗粒结果显示出极好的一致性。此外,使用椭圆偏振法测定了NaWO样品的能隙,并通过分光光度法测量得到证实。