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首页> 外文期刊>Journal of cluster science >Metal and Metal Oxide Nanostructures Prepared by Electrical Arc Discharge Method in Liquids
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Metal and Metal Oxide Nanostructures Prepared by Electrical Arc Discharge Method in Liquids

机译:液体中电弧放电法制备的金属和金属氧化物纳米结构

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In this review, the importance of electrical arc discharge technique in liquids in synthesis of various nanostructures from carbon based materials to metal and metal oxide nanostructures with their general and specific properties, especially the photocatalytic performance of metal oxide nanostructures is studied. The effect of arc current on size distribution, morphology and physicochemical properties of metal and semiconductor nanostructures was investigated by X-ray diffraction (XRD), transmission electron microscopy (TEM), dynamic light scattering (DLS), X-ray photoelectron spectroscopy (XPS) and UV-Vis spectroscopy. WO_3 Cubic nanostructures with 30 nm mean particle size were formed during the discharge process in water. Discharge between zinc electrodes in water leads to formation of rod like and semi spherical ZnO nanostructures with 15-20 nm diameter range. ZrO_2 nanoparticles were formed using zirconium electrodes in water. Photodegradation of Rhodamine B (Rh. B) shows that the as prepared nanostructures in this method have potential ability for environmental purifications. Also, using silver electrodes in water leads to formation of silver nanoparticles with 8-15 nm average particle size. Moreover, a novel method for synthesis of gold nanoparticles without using gold electrodes is presented. Finally, the future outlook of this technique in synthesis of various nanocrystalline materials is presented.
机译:在这篇综述中,研究了电弧放电技术在液体中从碳基材料到具有金属的金属和金属氧化物纳米结构的一般和特定性质,尤其是金属氧化物纳米结构的光催化性能的各种纳米结构的合成中的重要性。通过X射线衍射(XRD),透射电子显微镜(TEM),动态光散射(DLS),X射线光电子能谱(XPS)研究了电弧电流对金属和半导体纳米结构的尺寸分布,形态和理化性质的影响。 )和紫外可见光谱。在水中放电过程中形成了平均粒径为30 nm的WO_3立方纳米结构。水中锌电极之间的放电导致形成直径范围为15-20 nm的棒状和半球形ZnO纳米结构。 ZrO_2纳米粒子是在水中使用锆电极形成的。罗丹明B(Rh。B)的光降解表明,这种方法制备的纳米结构具有潜在的环境净化能力。同样,在水中使用银电极会导致形成平均粒径为8-15 nm的银纳米颗粒。此外,提出了一种不使用金电极而合成金纳米颗粒的新方法。最后,介绍了该技术在各种纳米晶体材料合成中的未来前景。

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