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  5. Double-ring-disk hybrid nanostructures with slits for electric field enhancement

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Article
en
2023

Double-ring-disk hybrid nanostructures with slits for electric field enhancement

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en
2023
Vol 62 (17)
Vol. 62
DOI: 10.1364/ao.489456dx.doi.org/10.1364/ao.489456

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Paul Kim Ho Chu
Paul Kim Ho Chu

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Haiwei Mu
Xinchen Xu
Jingwei Lv
+7 more

Abstract

Although noble metal nanoantennas have distinctive optical properties and local electric field enhancement, considerable non-radiative ohmic losses occur at the optical frequencies, consequently creating significant absorption and unwanted heating. Combining the plasmon mode of metal nanoantennas with the anapole mode of high refractive index dielectric materials offers a promising alternative to increase the electric field strength with minimal loss. Herein, a silicon disk with slots and two Au rings with a coupling mechanism are described. To elucidate the field enhancement mechanism, the near-field enhancement features and near-field electric field distributions are explored by a numerical simulation and multipole decomposition analysis. By opening the slit to generate high-intensity hot spots inside the disk, the electric field can be enhanced significantly, and nearby molecules can directly contact these hot spots. The resulting large field enhancement suggests significant applications to strong photon-exciton coupling and nonlinear photonics.

How to cite this publication

Haiwei Mu, Xinchen Xu, Jingwei Lv, Chao Liu, Wei Liu, Yang Lin, Jianxin Wang, Qiang Liu, Yan Lv, Paul Kim Ho Chu (2023). Double-ring-disk hybrid nanostructures with slits for electric field enhancement. , 62(17), DOI: https://doi.org/10.1364/ao.489456.

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Publication Details

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Article

Year

2023

Authors

10

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0

Total Files

0

Language

en

DOI

https://doi.org/10.1364/ao.489456

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