Anapole-Assisted Strong Field Enhancement in individual All-Dielectric Nanostructures

被引:175
|
作者
Yang, Yuanqing [1 ]
Zenin, Vladimir A. [1 ]
Bozhevolnyi, Sergey I. [1 ]
机构
[1] Univ Southern Denmark, SDU Nano Opt, Campusvej 55, DK-5230 Odense, Denmark
来源
ACS PHOTONICS | 2018年 / 5卷 / 05期
基金
欧洲研究理事会;
关键词
all-dielectric nanophotonics; Mie resonances; anapole modes; electric field enhancement; nanoantennas; 3RD HARMONIC-GENERATION; RESONANCES; RADIATION; HOTSPOTS; METAMATERIALS; NANOPHOTONICS; EMISSION; DRIVEN; MODES;
D O I
10.1021/acsphotonics.7b01440
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
High-index dielectric nanostructures have recently become prominent forefront alternatives for manipulating light at the nanoscale. Their electric and magnetic resonances with intriguing characteristics endow them with a unique ability to strongly enhance near-field effects with minimal absorption. Similar to their metallic counterparts, dielectric oligomers consisting of two or more coupled particles are generally employed to create localized optical fields. Here we show that individual all-dielectric nanostructures, with rational designs, can produce strong electric fields with intensity enhancements exceeding 3 orders of magnitude. Such a striking effect is demonstrated within a Si nanodisk by fully exploiting anapole generation and simultaneously introducing a slot area with high-contrast interfaces. By performing finite-difference time-domain simulations and multipole decomposition analysis, we systematically investigate both far-field and near-field properties of the slotted disk and reveal a subtle interplay among different resonant modes of the system. Furthermore, while electric fields at anapole modes are typically internal, i.e., found inside nanostructures, our slotted configuration generates external hotspots with electric fields additionally enhanced by virtue of boundary conditions. These electric hotspots are thereby directly accessible to nearby molecules or quantum emitters, opening up new possibilities for single particle enhanced spectroscopies or single-photon emission enhancement due to large Purcell effects. Our presented design methodology is also readily extendable to other materials and other geometries, which may unlock enormous potential for sensing and quantum nanophotonic applications.
引用
收藏
页码:1960 / 1966
页数:13
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