Investigation of structural, morphological, thermal, optical, and magnetic properties of graphene-embedded hematite and magnetite nanocomposites

IF 3.3 3区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Somavia Ameen, Rida Fatima, Nadim Ullah, Ammar M. Tighezza, Ijaz Ali, Uzma Bilal, Shahroz Saleem, Abu Summama Sadavi Bilal
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Abstract

Graphene and iron oxide nanocomposite materials attracted significant attention in different disciplines including optoelectronics, catalysis, and energy conversion/storage devices. Despite the extreme potential, a major obstacle had been the lack of effective and environmentally benign production techniques for mass-producing iron oxide-graphene nanocomposites. To overcome the obstacle, we opted for an efficient, facile, and eco-friendly hydrothermal synthesis route for the synthesis of iron oxide-graphene nanocomposites. The technique involved the homogenous mixing of metal salt precursor (iron chloride), and graphene oxide (GO) followed by a hydrothermal reaction under normal conditions. The synthesized nanocomposites were systematically investigated for structural, morphological, thermal, optical, and magnetic characteristics using XRD, Raman, SEM, TGA, UV–Vis, PL, and VSM techniques. The XRD and Raman studies confirmed the formation of α-Fe2O3-RGO and Fe3O4-RGO nanocomposites. The SEM images disclosed the anchoring of metal oxide nanoparticles to graphene nanosheets. The nanocomposite exhibited enhanced thermal stability compared to the pristine GO sample. The optical studies corroborated the better charge transfer response of nanocomposites and Hall effect measurements affirmed these nanocomposites as charge transport materials. The VSM measurements confirmed the magnetic behavior of the samples. Therefore, these nanocomposite materials could be a viable option for optoelectronics and energy conversion/storage devices.

Abstract Image

嵌入石墨烯的赤铁矿和磁铁矿纳米复合材料的结构、形态、热学、光学和磁学特性研究
石墨烯和氧化铁纳米复合材料在光电子学、催化和能量转换/存储设备等不同学科领域引起了极大关注。尽管石墨烯和氧化铁纳米复合材料具有极大的潜力,但一个主要障碍是缺乏有效且对环境无害的生产技术来大规模生产氧化铁-石墨烯纳米复合材料。为了克服这一障碍,我们选择了一种高效、简便、环保的水热合成路线来合成氧化铁-石墨烯纳米复合材料。该技术包括将金属盐前体(氯化铁)和氧化石墨烯(GO)均匀混合,然后在正常条件下进行水热反应。利用 XRD、拉曼、扫描电镜、TGA、紫外可见光、聚光和 VSM 技术对合成的纳米复合材料的结构、形态、热、光学和磁学特性进行了系统研究。XRD 和拉曼研究证实了 α-Fe2O3-RGO 和 Fe3O4-RGO 纳米复合材料的形成。扫描电镜图像显示金属氧化物纳米颗粒锚定在石墨烯纳米片上。与原始 GO 样品相比,纳米复合材料的热稳定性更强。光学研究证实了纳米复合材料具有更好的电荷转移响应,霍尔效应测量证实了这些纳米复合材料是电荷传输材料。VSM 测量证实了样品的磁性。因此,这些纳米复合材料可以成为光电子学和能量转换/存储设备的可行选择。
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来源期刊
Optical and Quantum Electronics
Optical and Quantum Electronics 工程技术-工程:电子与电气
CiteScore
4.60
自引率
20.00%
发文量
810
审稿时长
3.8 months
期刊介绍: Optical and Quantum Electronics provides an international forum for the publication of original research papers, tutorial reviews and letters in such fields as optical physics, optical engineering and optoelectronics. Special issues are published on topics of current interest. Optical and Quantum Electronics is published monthly. It is concerned with the technology and physics of optical systems, components and devices, i.e., with topics such as: optical fibres; semiconductor lasers and LEDs; light detection and imaging devices; nanophotonics; photonic integration and optoelectronic integrated circuits; silicon photonics; displays; optical communications from devices to systems; materials for photonics (e.g. semiconductors, glasses, graphene); the physics and simulation of optical devices and systems; nanotechnologies in photonics (including engineered nano-structures such as photonic crystals, sub-wavelength photonic structures, metamaterials, and plasmonics); advanced quantum and optoelectronic applications (e.g. quantum computing, memory and communications, quantum sensing and quantum dots); photonic sensors and bio-sensors; Terahertz phenomena; non-linear optics and ultrafast phenomena; green photonics.
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