聚苯胺/镍铁氧体混合纳米复合材料的原位合成与表征:定制介电性能和磁性能

IF 3.9 3区 化学 Q2 POLYMER SCIENCE
K. S. Mary Linsa, Roshila K. Pavithran, K. A. Prasad, K. S. Sibi, U. S. Sajeev
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引用次数: 0

摘要

本研究阐明了通过原位化学氧化聚合法合成聚苯胺/镍铁氧体(PANI/NF)杂化纳米复合材料(NCs),并在 PANI 基体中加入不同重量分数(5%、10% 和 20%)的镍铁氧体(NF)。对 PANI/NF 复合材料的结构、光学、形态、介电和磁性能进行了广泛的表征。X 射线衍射 (XRD) 分析证实了 NF 纳米粒子在 PANI 基体中的均匀分散。傅立叶变换红外光谱(FTIR)确定了 PANI 大分子和 NF 纳米粒子之间潜在的相互作用。紫外可见(UV-Vis)光学吸收光谱显示,随着 NF 含量的增加,PANI/NF 复合材料的直接和间接光带隙都有所减小。扫描电子显微镜(SEM)和能量色散 X 射线光谱(EDX)以及场发射扫描电子显微镜(FESEM)证实,NF 有效地融入了 PANI 基体。介电测量是为了评估介电常数的实部(K')和虚部(K'')、介质损耗正切(tan δ)和交流电导率(σac)与频率和成分的函数关系。样品的奈奎斯特图显示出一个凹陷的半圆,表明样品具有非德拜电容性。PANI 及其复合材料的交流电导率随着频率的增加而增加,这符合容舍的普遍幂律。加入 NF 后,PANI 的电导率提高,这与带隙减小有关。通过磁化曲线对纯 PANI 和 PANI/NF 复合材料进行了磁性表征比较,证明了在聚合过程中通过控制 NF 集成来调整 PANI 磁性能的潜力。结果表明,聚合物基体与 NC 内的 NF 纳米颗粒之间存在明显的界面相互作用,从而改变了介电和磁性能。通过改变 PANI 和 NF 纳米粒子的比例来精确设计 NC 特性的能力,凸显了这些材料在先进技术应用中的创新潜力。这项研究显著推动了导电聚合物-铁氧体复合材料领域的发展,为其在不同技术领域的新型应用奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

In-situ Synthesis and Characterization of Polyaniline/Nickel Ferrite Hybrid Nanocomposites: Tailoring Dielectric and Magnetic Properties

In-situ Synthesis and Characterization of Polyaniline/Nickel Ferrite Hybrid Nanocomposites: Tailoring Dielectric and Magnetic Properties

This study elucidates the synthesis of polyaniline/nickel ferrite (PANI/NF) hybrid nanocomposites (NCs) via in-situ chemical oxidative polymerization, incorporating nickel ferrite (NF) at different weight fractions (5%, 10%, and 20%) into the PANI matrix. Extensive characterizations of the structural, optical, morphological, dielectric, and magnetic properties of the PANI/NF composites were conducted. X-ray diffraction (XRD) analysis verified the homogeneous dispersion of NF nanoparticles within the PANI matrix. Fourier-transform infrared (FTIR) spectroscopy identified potential interactions between the PANI macromolecules and NF nanoparticles. Ultraviolet-visible (UV-Vis) optical absorption spectroscopy revealed a decrease in both direct and indirect optical band gaps of the PANI/NF composites with increasing NF content. Scanning electron microscopy (SEM) coupled with energy-dispersive X-ray spectroscopy (EDX), along with Field Emission Scanning Electron Microscopy (FESEM), confirmed the effective incorporation of NF into the PANI matrix. Dielectric measurements were performed to assess the real (K’) and imaginary (K’’) components of dielectric permittivity, dielectric loss tangent (tan δ), and AC conductivity (σac) as functions of frequency and composition. Nyquist plots of the samples exhibited a depressed semi-circle, indicating a non-Debye capacitive nature. The AC conductivity of PANI and its composites increases with frequency, following Jonscher’s universal power law. The improved conductivity of PANI with the addition of NF correlates with a decrease in the band gap. Magnetic characterization, through magnetization curves, compared pure PANI with PANI/NF composites, demonstrating the potential for tuning the magnetic properties of PANI by controlled NF integration during polymerization. The results suggest significant interfacial interactions between the polymer matrix and NF nanoparticles within the NCs, leading to modified dielectric and magnetic properties. The ability to precisely engineer the properties of the NCs through varying proportions of PANI and NF nanoparticles highlights the innovative potential of these materials in advanced technological applications. This study markedly advances the field of conducting polymer-ferrite composites, providing a foundation for novel applications in diverse technological domains.

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来源期刊
CiteScore
8.30
自引率
7.50%
发文量
335
审稿时长
1.8 months
期刊介绍: Journal of Inorganic and Organometallic Polymers and Materials [JIOP or JIOPM] is a comprehensive resource for reports on the latest theoretical and experimental research. This bimonthly journal encompasses a broad range of synthetic and natural substances which contain main group, transition, and inner transition elements. The publication includes fully peer-reviewed original papers and shorter communications, as well as topical review papers that address the synthesis, characterization, evaluation, and phenomena of inorganic and organometallic polymers, materials, and supramolecular systems.
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