溶液等离子体法制备纳米硒的影响因素研究

Thanh Huu Le, S. Ngo, T. Tran, H. T. Nguyen
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引用次数: 0

摘要

溶液等离子体工艺(SPP)是一种利用等离子体在液体中放电生产纳米材料的革命性方法。SPP可以在没有还原剂的情况下迅速使金属去离子变为中性状态。本研究在溶液等离子体中制备了硒纳米颗粒。该方法能够在不使用稳定剂的情况下生产出在水中具有均匀尺寸和高度稳定性的硒纳米颗粒。采用紫外可见分光光度法(UV-vis)、x射线衍射法(XRD)、动态光散射粒度分析仪(DLS)、扫描电子显微镜(SEM)和透射电子显微镜(TEM)等技术对制备的纳米硒进行了分析。在乙醇/水的混合物中(比蒸馏水更好的溶剂),SeNPs形成均匀的花状纳米结构,直径从50÷70 nm不等。同时研究了电压、电极间距、反应时间等参数对纳米硒合成的影响。研究结果表明,溶液等离子体可以在很短的时间内(约60分钟)形成硒纳米颗粒。此外,电极之间的最小间距必须为0.5 mm。达到高效反应的理想电压为2kv,电压过高会使反应溶液沸腾,导致反应物损失,电压过低则不能点燃反应。在此条件下,反应效率达到100%。这些参数有助于缩短反应时间,这是该合成方法的优点。因此,溶液等离子体合成纳米硒的方法使其在生物医学应用中具有极大的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study on factors affecting the synthesis of selenium nanoparticles by solution plasma method
The solution plasma process (SPP) is a revolutionary approach for production of nanomaterials employing plasma discharge in liquid. The SPP can quickly deionize metal into the neutral state in the absence of a reducing agent. Selenium nanoparticles are created in solution plasma in this investigation. The approach is capable of producing selenium nanoparticles with uniform size in water and great stability without the use of a stabilizer. UV-Visible Spectrophotometry (UV-vis), X-Ray Diffraction (XRD), Dynamic Light Scattering Particle Size Analyzer (DLS), Scanning Electron Microscope (SEM) and Transmission Electron Microscope (TEM) techniques are used to analyze the produced selenium nanoparticles. In an ethanol/water mixture, the better solvent compares to distilled water, the SeNPs forms uniform flower-like nanostructures with diameters ranging from 50÷70 nm. Also, the effects of other parameters such as voltage, electrode spacing and reaction time on the production of nano selenium are investigated. The findings show that solution plasma can help form selenium nano particle in a very short time which is about 60 minutes. In addition, the electrodes must be separated by a minimum distance which is 0.5 mm . The ideal voltage to achieve a highly efficient process is 2 kV The higher voltage cause the reaction solution boil leading to the loss of reactants while the lower value cannot ignite the reaction. The reaction efficiency reaches 100% when applied those conditions. Also, those parameters help to shorten the reaction time which is an advantage of the synthesis method. As a result, the solution plasma method of synthesising nanoselenium makes it extremely promising for use in biomedical applications.
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