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Third-harmonic generation and imaging with resonant Si membrane metasurface

  • Ze Zheng
  • , Lei Xu*
  • , Lujun Huang
  • , Daria Smirnova
  • , Khosro Zangeneh Kamali
  • , Arman Yousefi
  • , Fu Deng
  • , Rocio Camacho-Morales
  • , Cuifeng Ying
  • , Andrey E. Miroshnichenko
  • , Dragomir N. Neshev
  • , Mohsen Rahmani*
  • *此作品的通讯作者
  • Nottingham Trent University
  • University of New South Wales
  • Australian National University
  • Hong Kong University of Science and Technology

科研成果: 期刊稿件文章同行评审

摘要

Dielectric metasurfaces play an increasingly important role in enhancing optical nonlinear generations owing to their ability to support strong light-matter interactions based on Mie-type multipolar resonances. Compared to metasurfaces com-posed of the periodic arrangement of nanoparticles, inverse, so-called, membrane metasurfaces offer unique possibilit-ies for supporting multipolar resonances, while maintaining small unit cell size, large mode volume and high field en-hancement for enhancing nonlinear frequency conversion. Here, we theoretically and experimentally investigate the formation of bound states in the continuum (BICs) from silicon dimer-hole membrane metasurfaces. We demonstrate that our BIC-formed resonance features a strong and tailorable electric near-field confinement inside the silicon membrane films. Furthermore, we show that by tuning the gap between the holes, one can open a leaky channel to transform these regular BICs into quasi-BICs, which can be excited directly under normal plane wave incidence. To prove the capabilities of such metasurfaces, we demonstrate the conversion of an infrared image to the visible range, based on the Third-har-monic generation (THG) process with the resonant membrane metasurfaces. Our results suggest a new paradigm for realising efficient nonlinear photonics metadevices and hold promise for extending the applications of nonlinear structur-ing surfaces to new types of all-optical near-infrared imaging technologies.

源语言英语
文章编号220174
期刊Opto-Electronic Advances
6
8
DOI
出版状态已出版 - 2023

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