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Modeling nanoparticle formation by laser ablation and by spark discharges

机译:通过激光烧蚀和火花放电模拟纳米颗粒的形成

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摘要

Nanoparticles have found numerous applications in such areas as photonics, electronics, medicine, etc. Further development of these fields requires reliable and versatile methods of nanoparticle synthesis with well-controlled properties. Among promising synthesis techniques, both laser ablation and plasma discharges are considered. These methods provide numerous advantages that are unique in several cases. On one hand, the main advantage of the laser ablation method is in the possibilities of changing laser parameters and background conditions and in its capacity to preserve stoichiometry. Laser-based methods also yield bio-compatible nanoparticles and nano-colloids with unique chemical properties. Laser-induced fragmentation provides additional control ways over nanoparticle sizes. To better understand and to optimize these processes, detailed numerical modeling is performed. The involved stages are considered and analyzed. The resulting nanoparticle parameters are investigated as a function of the experimental conditions. Nanoparticle properties, such as mean size and mean concentration are analyzed. Differences and similarities between the considered synthesis methods are discussed.
机译:纳米颗粒已在光子学,电子学,医学等领域获得了广泛的应用。这些领域的进一步发展需要可靠且通用的具有良好控制特性的纳米颗粒合成方法。在有希望的合成技术中,考虑了激光烧蚀和等离子体放电。这些方法提供了许多情况下独有的众多优势。一方面,激光烧蚀方法的主要优点在于可以改变激光参数和背景条件,以及保持化学计量的能力。基于激光的方法还可以产生具有独特化学性质的生物相容性纳米颗粒和纳米胶体。激光诱导的碎裂为纳米颗粒尺寸提供了其他控制方式。为了更好地理解和优化这些过程,将执行详细的数值建模。考虑并分析了涉及的阶段。研究所得的纳米颗粒参数与实验条件的关系。分析了纳米粒子的性质,例如平均大小和平均浓度。讨论了所考虑的合成方法之间的异同。

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