High-refractive-index nanoparticles embedded in media: multipole evolution and broadband forward scattering enhancement (Conference Presentation)

P. Terekhov, H. Shamkhi, E. Gurvitz, A. Evlyukhin, A. Shalin, A. Karabchevsky
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Abstract

Light scattering by all-dielectric nanoparticles attract significant attention of photonics community. Single nanoparticles can be used both as nanoantennas and as building blocks to construct 2D and 3D meta-structures. In this work we study scattering effect when silicon nanoparticles are embedded in different media. To analyze the evolution of multipole moments and their contributions to the scattering cross-sections of the nanoparticles in media, we use semi-analytical multipole decomposition approach. Explicitly, we investigate the behavior of electric and magnetic multipoles, up to third order, while dielectric nanoparticle made of silicon is embedded in a media. We found that electric and magnetic multipoles experience different red shift as refractive index increases. Due to this behavior separated high-order multipole resonances overlap with each other; thereby, scattering cross section peaks, which could be observed when a particles are in air, merge to the joint scattering cross section peaks. Such resonances overlap also affect both far-field radiation diagrams and field distribution inside the nanoparticle. Importantly, we noticed that when index of a surrounding media increases, the cubical nanoparticles provide spectral broadening of forward scattering effect. Our results provide fundamental information for understanding the scattering effect in all-dielectric nanoantennas or metasurfaces embedded in different dielectric media and operating in wide spectral range. For practical utilization, explored here dielectric nanoparticles could be used in broad range of applications such as in-vitro and in-vivo biomedical devices for sensing and drug delivering, sub-wavelength nano-amplifiers, and many other emerging applications.
嵌入介质中的高折射率纳米粒子:多极演化和宽带前向散射增强(会议报告)
全介电纳米粒子的光散射引起了光子学界的广泛关注。单个纳米颗粒既可以用作纳米天线,也可以用作构建二维和三维元结构的积木。本文研究了硅纳米颗粒在不同介质中的散射效应。为了分析多极矩的演变及其对介质中纳米颗粒散射截面的贡献,我们采用半解析多极分解方法。明确地,我们研究了电和磁多极的行为,直到三阶,而由硅制成的介电纳米粒子嵌入在介质中。我们发现,随着折射率的增加,电多极和磁多极会经历不同的红移。由于这种行为,分离的高阶多极共振相互重叠;因此,粒子在空气中可以观察到的散射截面峰合并到联合散射截面峰上。这种共振重叠也会影响远场辐射图和纳米粒子内部的场分布。重要的是,我们注意到,当周围介质的指数增加时,立方体纳米粒子的前向散射效应的光谱展宽。我们的研究结果为理解嵌入不同介质的全介质纳米天线或超表面在宽光谱范围内的散射效应提供了基础信息。在实际应用方面,本文探讨了介电纳米粒子的广泛应用,如体外和体内生物医学设备的传感和药物输送,亚波长纳米放大器,以及许多其他新兴应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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