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Nanoshells for photothermal therapy: a Monte-Carlo based numerical study of their design tolerance

机译:用于光热疗法的纳米壳:基于蒙特卡洛的设计公差数值研究

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摘要

The optimization of the coated metallic nanoparticles and nanoshells is a current challenge for biological applications, especially for cancer photothermal therapy, considering both the continuous improvement of their fabrication and the increasing requirement of efficiency. The efficiency of the coupling between illumination with such nanostructures for burning purposes depends unevenly on their geometrical parameters (radius, thickness of the shell) and material parameters (permittivities which depend on the illumination wavelength). Through a Monte-Carlo method, we propose a numerical study of such nanodevice, to evaluate tolerances (or uncertainty) on these parameters, given a threshold of efficiency, to facilitate the design of nanoparticles. The results could help to focus on the relevant parameters of the engineering process for which the absorbed energy is the most dependant. The Monte-Carlo method confirms that the best burning efficiency are obtained for hollow nanospheres and exhibit the sensitivity of the absorbed electromagnetic energy as a function of each parameter. The proposed method is general and could be applied in design and development of new embedded coated nanomaterials used in biomedicine applications.
机译:考虑到其制造的持续改进和对效率的日益增长的需求,对涂覆的金属纳米颗粒和纳米壳的优化是生物应用,特别是癌症光热疗法的当前挑战。具有这种纳米结构的用于照明目的的照明之间的耦合效率不均匀地取决于它们的几何参数(半径,壳的厚度)和材料参数(介电常数取决于照明波长)。通过蒙特卡洛方法,我们提出了对这种纳米器件的数值研究,以在给定效率阈值的情况下评估这些参数的公差(或不确定性),以促进纳米颗粒的设计。结果可以帮助集中于吸收能量最依赖的工程过程的相关参数。蒙特卡洛方法证实了空心纳米球的燃烧效率最佳,并且表现出所吸收电磁能随每个参数变化的敏感性。所提出的方法是通用的,可用于生物医学应用中新型嵌入式涂层纳米材料的设计和开发。

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