Fabrication and dielectric spectroscopy analysis of FeGaInS 4 / PVA composite materials

材料科学 电介质 复合数 介电谱 聚乙烯醇 耗散因子 纳米复合材料 电导率 介电常数 介电损耗 复合材料 电极 化学 电化学 物理化学 光电子学
作者
Zeynab Addayeva,Yashar Azizian‐Kalandaragh,N. N. Niftiyev,Goncha Eyvazova,Faik Mammadov,М. Б. Бабанлы,Mahammad Baghir Baghirov,Mustafa Muradov
出处
期刊:Journal of Vinyl & Additive Technology [Wiley]
卷期号:30 (6): 1650-1658 被引量:16
标识
DOI:10.1002/vnl.22148
摘要

Abstract The control of dielectric permittivity and conductivity is a crucial factor in the development of certain electronic components. Materials based on layered structures and polyvinyl alcohol (PVA) show great potential for applications in supercapacitors. Therefore, the creation of polymer composites based on layered semiconductors and the determination of their physical properties is significant. In this investigation, a composite comprising 1 wt% FeGaInS 4 dispersed in PVA was synthesized through mechanical mixing, where the FeGaInS 4 crystal was incorporated into the PVA matrix. This study explores the physical characteristics of this composite for the first time. The structure of the composite was analyzed using x‐ray diffraction (XRD). Electrical properties and conductivity mechanisms were examined using a dielectric spectrometer. It was determined that the hopping model conductivity mechanism predominates in the FeGaInS 4 /PVA nanocomposite. For the 1 wt% FeGaInS 4 /PVA composite, system parameters were calculated at a temperature of 313 K and a frequency of 5 × 10 3 Hz. The parameters found are s = 0.814, potential barrier height W M = 0.868 eV, hopping length R ω = 14.7 × 10 −10 m, and the concentration of pairs of states between, which charge carriers hop N = 1.396 × 10 26 m −3 . Highlights 1 wt% FeGaInS4 composite synthesized via mechanical assembly. Small crystals boost dielectric constant by 1.5× via interfacial polarization. The system parameters are defined: s = 0.814, W M = 0.868 eV, R ω = 14.7 × 10 −10 m. Electrical conduction is multifaceted; conductance hopping dominates. Loss tangent decreases due to interfacial polarization effects.
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