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Theoretical investigation of optical properties of optimal architectures of magnetoplasmonic nanoparticles in human tissue for potential applications in photothermal therapy

机译:人体组织磁体纳米粒子型磁性纳米粒子最优架构光学性质的理论研究,潜在应用在光热疗中的应用

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摘要

The absorption and scattering efficiencies of light by a single magnetoplasmonic nanoparticle, based on magnetite and gold, embedded in human tissue are analyzed theoretically in the framework of Finite-DifferenceTime-Domain method and Lorenz-Mie theory. We consider separately three different architectures for the magnetoplasmonic nanoparticle: rectangular three-layer gold/magnetite/gold nanobar, circular three-layer gold/magnetite/gold nanoring and magnetite/gold core/shell nanosphere. We address the influence of particle sizes and magnetite-layer and gold-layer thicknesses on the optical response of such nanostructures. Particular attention is paid to the effectiveness of these designed nanostructures in photothermal therapy. Our simulation shows that these hybrid nanostructures support the famous localized surface plasmon resonance mode of gold, which manifests itself in the absorption spectrum by an intense peak whose spectral position can be adjusted to be in the first and second NIR-biological windows. The magnitude of the resonant absorption peak as well as that of the corresponding scattering peak vary from one nanostructure to another and, for the same nanostructure, change with its characteristic sizes. The three-layer nanobars as well as the three-layer nanorings can support significant absorption accompanied by significant scattering of light into both NIR-biological windows. For core/shell nanospheres, the low scattering efficiency of light within the second NIR-biological window, together with their large sizes, limit the usefulness of these nanostructures in photothermal therapy operating in the first NIR-biological window only.
机译:在理论上,在有限差异 - 域法和Lorenz-Mie理论框架中,在理论上分析了一种基于人体组织的磁铁矿和金的单磁性纳米粒子的吸收和散射效率。我们认为磁性纳米粒子分别三种不同的架构:矩形三层金/磁铁矿/金纳巴马尔,圆形三层金/磁铁矿/金纳米纳米和磁铁矿/金芯/壳南部。我们解决了粒度和磁铁层和金层厚度对这种纳米结构的光学响应的​​影响。特别注意这些设计纳米结构在光热疗法中的有效性。我们的模拟表明,这些混合纳米结构支持着名的局部表面等离子体共振模式,其通过强烈的峰值在吸收光谱中表现出,其光谱位置可以调节到第一和第二尼尔生物窗口中。谐振吸收峰的大小以及相应的散射峰的幅度从一个纳米结构变化到另一个纳米结构,并且对于相同的纳米结构,随着其特征尺寸而变化。三层纳米载体以及三层纳米纳米可以伴随着显着的吸收,伴随着光的显着散射进入NIR-生物窗口。对于芯/壳纳米球,第二个内鲁生物窗口内的光的低散射效率,以及其大尺寸,限制了这些纳米结构在第一个NIR-生物窗口中的光热疗中的有用性。

著录项

  • 来源
    《Optical Materials》 |2021年第4期|110946.1-110946.9|共9页
  • 作者单位

    Univ Technol Troyes Lab Light Nanomat & Nanotechnol CNRS ERL 7004 12 Rue Marie Curie F-10000 Troyes France;

    Univ Technol Troyes Lab Light Nanomat & Nanotechnol CNRS ERL 7004 12 Rue Marie Curie F-10000 Troyes France;

    Univ Technol Troyes Lab Light Nanomat & Nanotechnol CNRS ERL 7004 12 Rue Marie Curie F-10000 Troyes France;

    Univ Sfax Fac Sci Sfax Dept Phys POB 1171 Sfax 3000 Tunisia;

    Univ Technol Troyes Lab Light Nanomat & Nanotechnol CNRS ERL 7004 12 Rue Marie Curie F-10000 Troyes France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Optical properties; Magnetoplasmonic nanoparticles; Light absorption; Light scattering; Photothermal therapy; Modeling and simulation;

    机译:光学性质;磁性纳米颗粒;光吸收;光散射;光热疗法;建模和仿真;

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