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首页> 外文期刊>Talanta: The International Journal of Pure and Applied Analytical Chemistry >Determination of silica coating efficiency on metal particles using multiple digestion methods
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Determination of silica coating efficiency on metal particles using multiple digestion methods

机译:使用多种消解方法测定金属颗粒上的二氧化硅涂层效率

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Nano-sized metal particles, including both elemental and oxidized metals, have received significant interest due to their biotoxicity and presence in a wide range of industrial systems. A novel silica technology has been recently explored to minimize the biotoxicity of metal particles by encapsulating them with an amorphous silica shell. In this study, a method to determine silica coating efficiency on metal particles was developed. Metal particles with silica coating were generated using gas metal arc welding (GMAW) process with a silica precursor tetramethylsilane (TMS) added to the shielding gas. Microwave digestion and Inductively Coupled Plasma-Atomic Emission Spectroscopy (ICP-AES) were employed to solubilize the metal content in the particles and analyze the concentration, respectively. Three acid mixtures were tested to acquire the appropriate digestion method targeting at metals and silica coating. Metal recovery efficiencies of different digestion methods were compared through analysis of spiked samples. HNO_3/HF mixture was found to be a more aggressive digestion method for metal particles with silica coating. Aqua regia was able to effectively dissolve metal particles not trapped in the silica shell. Silica coating efficiencies were thus calculated based on the measured concentrations following digestion by HNO_3/HF mixture and aqua regia. The results showed 14-39% of welding fume particles were encapsulated in silica coating under various conditions. This newly developed method could also be used to examine the silica coverage on particles of silica shell/metal core structure in other nanotechnology areas.
机译:包括元素金属和氧化金属在内的纳米级金属颗粒由于其生物毒性和广泛的工业系统中的存在而备受关注。最近已经研究了一种新颖的二氧化硅技术,该技术通过将金属颗粒包裹在无定形的二氧化硅壳中来最大程度地降低金属颗粒的生物毒性。在这项研究中,开发了一种确定二氧化硅在金属颗粒上的涂覆效率的方法。使用气体保护金属电弧焊(GMAW)工艺,将二氧化硅前驱体四甲基硅烷(TMS)添加到保护气体中,生成带有二氧化硅涂层的金属颗粒。微波消解和电感耦合等离子体原子发射光谱法(ICP-AES)分别用于溶解颗粒中的金属含量和分析浓度。测试了三种酸混合物,以获得针对金属和二氧化硅涂层的适当消解方法。通过分析加标样品,比较了不同消解方法的金属回收率。发现HNO_3 / HF混合物是对带有二氧化硅涂层的金属颗粒更有效的消解方法。王水能够有效溶解未被困在二氧化硅壳中的金属颗粒。因此,基于通过HNO_3 / HF混合物和王水消化后的测得浓度,计算出二氧化硅涂层的效率。结果表明,在各种条件下,有14-39%的焊接烟尘颗粒被包裹在二氧化硅涂层中。这种新开发的方法还可以用于检查其他纳米技术领域中二氧化硅壳/金属核结构颗粒的二氧化硅覆盖率。

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