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Synthesis and comparative study of optical and electrical properties of Au-doped carbon nanotubes prepared in different reaction media

机译:不同反应介质中制备的Au掺杂碳纳米管的光学和电性能的合成与对比研究

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We introduce the synthesis, characterization and physical properties of gold (Au) doped multi-walled carbon nanotubes (MWCNTs) in different reaction media. In order to dope MWCNTs with Au nanoparticles (NPs), first functionalized carbon nanotubes (f-MWCNTs) were prepared. The reduction of gold (III) chloride trihydrate for synthesizing Au NPs in the presence of f-MWCNTs was performed by using sodium citrate as a reducing agent. The produced nanocomposites were characterized using FTIR, XRD and TEM analyses to explore their chemical structures and morphologies. All of the samples have been characterized by TGA and resultantly, the composite made into ethylene glycol exhibited the most concentration of Au NPs into the composite network. This work probes the optical characteristics, such as UV-vis absorption, and optical band gap. Hall effect analyses declared some pleasing variations in electrical characteristics. Remarkably, the n-type doping of Au NPs in the p-type MWCNTs' network led to a downshift of the Fermi level. This process increased the doped samples electrical conductivity. The results indicated that modification of MWCNTs with Au NPs has generally an important role in decreasing the band gap and increasing the electrical activity of MWCNTs. Our research outcomes provide a new vision into how different reaction media could affect the characteristics of MWCNT/Au nanocomposites. We discovered that ethylene glycol could be considered as a perfect reaction medium for preparation of high-quality doped CNTs with excellent physical properties. Our effort opens up the door to far more investigations on the role of the reaction medium in products' characteristics.
机译:我们在不同反应介质中介绍了金(Au)掺杂多壁碳纳米管(MWCNT)的合成,表征和物理性质。为了用Au纳米颗粒(NPS)掺杂MWCNT,制备第一官能化碳纳米管(F-MWCNT)。通过使用柠檬酸钠作为还原剂,对用于在F-MWCNTS存在下合成Au NP的金(III)氯化物三水合物的减少。使用FTIR,XRD和TEM分析表征产生的纳米复合材料,以探索其化学结构和形态。所有样品都是通过TGA的特征,并且由此产生,制成乙二醇的复合材料表现出最浓度的Au nps进入复合网络。该工作探测光学特性,例如UV-Vis吸收和光带隙。霍尔效应分析宣布了一些令人愉悦的电气特性变化。值得注意的是,P型MWCNTS网络中AU NP的N型掺杂导致FERMI水平的降档。该过程增加了掺杂的样品电导率。结果表明,具有Au NPS的MWCNT的修饰通常在减少带隙并增加MWCNT的电活动方面具有重要作用。我们的研究结果为不同的反应介质如何影响MWCNT / AU纳米复合材料的特性提供了新的视觉。我们发现乙二醇可以被认为是一种完美的反应介质,用于制备具有优异物理性质的高质量掺杂CNT。我们的努力将更多的是对产品特征中的反应介质作用的更远的研究。

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