多壁碳纳米管/碳量子点纳米复合材料的性能研究

Shaymaa A. AL- Kareem, Saeed .J. Abbas
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引用次数: 0

摘要

近年来,人们对纳米材料的合成和表征越来越感兴趣。碳纳米管(CNTs)和量子点(QDs)由于其独特的性能而成为极具发展前景的纳米材料。本研究旨在利用水热法合成和表征多壁CNTs和量子点。以二茂铁和硫为前驱体,在200℃的温度下合成了MWCNTs,而以聚乙二醇(PEG)为前驱体,在160℃的温度下制备了量子点。为了制备纳米复合膜,将MWCNTs和QDs以不同的重量比(3:1、2:2和1:3)通过超声分散进行混合。然后用所得混合物在玻璃表面形成薄膜。利用傅里叶变换红外光谱(FT-IR)、场发射扫描电子显微镜(FESEM)、x射线衍射(XRD)和电导率测量等一系列分析对复合材料进行了表征。从FESEM测量中,观察到不同尺寸的球形颗粒,尺寸分布广泛,小于10nm。XRD分析显示,上述三种重量比的d-spacing值分别为0.34nm、0.39nm和0.46nm。颗粒直径在32.48 ~ 31.96nm之间,长度约为1µm。测定了膜的电导率,得到的结果表明,在不同的重量比下,膜的活化能分别为0.155eV、0.14eV和0.25eV。所得到的纳米复合薄膜通过不同的工艺表现出独特的性能。这些发现有助于对纳米材料在不同领域的理解和潜在应用
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Study of the properties of Multi-walled carbon nanotubes/ Carbon Quantum Dots Nanocomposites
In recent years, there has been a growing interest in the synthesis and characterization of nanomaterials for various applications. Carbon nanotubes (CNTs) and quantum dots (QDs) are among the promising nanomaterials due to their unique properties. This study aims to synthesize and characterize multi-walled CNTs and QDs using the hydrothermal method. MWCNTs were synthesized at a temperature of 200°C using Ferrocene and Sulfur as precursors, while QDs were prepared at a temperature of 160°C using Polyethylene glycol (PEG). To fabricate the nanocomposite films, MWCNTs and QDs were mixed at different weight ratios (3:1, 2:2, and 1:3) through ultrasonic dispersion. The resulting mixture was then used to form films on glass surfaces. Characterization of the composites was carried out using a series of analyses including Fourier-transform infrared spectroscopy (FT-IR), field emission scanning electron microscopy (FESEM), X-ray diffraction (XRD), and electrical conductivity measurements. From the FESEM measurements, spherical particles of various sizes were observed, with a wide size distribution of less than 10nm. XRD analysis revealed d-spacing values of 0.34nm, 0.39nm, and 0.46nm for all the mentioned weight ratios. Additionally, the diameter of the particles ranged from 32.48nm to 31.96nm, with a length of approximately 1µm. The electrical conductivity of the films was also measured, and the obtained results indicated activation energies of 0.155eV, 0.14eV, and 0.25eV for the respective weight ratios. The resulting nanocomposite films exhibited unique properties as characterized by various techniques. These findings contribute to the understanding and potential applications of nanomaterials in diverse
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