材料科学
热点(地质)
米氏散射
磁偶极子
磁场
电介质
偶极子
磁性纳米粒子
硅
纳米颗粒
光散射
折射率
分子物理学
光学
光电子学
散射
纳米技术
物理
量子力学
地球物理学
作者
Akira Matsumori,Hiroshi Sugimoto,Minoru Fujii
标识
DOI:10.1002/adom.202102574
摘要
Abstract High refractive index dielectric nanoparticles supporting the magnetic dipole (MD) Mie resonance are capable of inducing strongly enhanced magnetic field at an optical frequency, and have great potential for enhancing light–matter interactions such as magnetic dipole transitions of ions and molecules. However, the magnetic hotspot is usually located inside a nanoparticle and thus the development of technology to access the hotspot remains an urgent issue. Here, a silicon (Si) nanosphere having an access hole to the magnetic hotspot is proposed. Numerical simulations for a Si nanosphere with a hole of different diameters and depths are performed. Then, a solution‐based process to dig an access hole to a Si nanosphere is developed. A spectroscopic method to analyze nanohole‐induced anisotropy of a spherical nanoantenna is also developed. Finally, in combination with numerical simulations and angle‐resolved scattering measurements of a Si nanosphere with a nanohole, it is shown that the magnetic field intensity is 100‐fold enhanced at the nanohole.
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