4.7 Article

Giant enhancements of high-order upconversion luminescence enabled by multiresonant hyperbolic metamaterials

期刊

PHOTONICS RESEARCH
卷 9, 期 3, 页码 395-404

出版社

CHINESE LASER PRESS
DOI: 10.1364/PRJ.414047

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资金

  1. National Key Research and Development Program of China [2016YFA0301300]
  2. National Natural Science Foundation of China [11974437, 91750207, 11761141015, 11974123]
  3. Key Research and Development Program of Guangdong Province [2018B030329001]
  4. Guangdong Special Support Program [2017TQ04C487]
  5. Guangdong Natural Science Funds for Distinguished Young Scholars [2017B030306007, 2018B030306015]
  6. Guangdong Provincial Natural Science Fund Projects [2019A050510037]
  7. Pearl River S&T Nova Program of Guangzhou [201806010033]
  8. Open Fund of IPOC (BUPT) [IPOC2019A003]
  9. Fundamental Research Funds for the Central Universities [20lgzd30]

向作者/读者索取更多资源

Photonic nanostructures with resonant modes can enhance light-matter interactions, but challenges such as small hot spots and limited spectral enhancements need to be overcome. By introducing an AHMM structure, significant enhancements in three-photon and four-photon luminescence were achieved, offering a promising platform for various photonics applications.
Photonic nanostructures with resonant modes that can generate large electric field (EF) enhancements are applied to enhance light-matter interactions in nanoscale, bringing about great advances in both fundamental and applied science. However, a small hot spot (i.e., the regions with strong EF enhancements) and highly inhomogeneous EF distribution of the resonant modes usually hinder the enhancements of light-matter interactions in a large spatial scale. Additionally, it is a severe challenge to simultaneously generate multiple resonant modes with strong EF enhancements in a broadband spectral range, which greatly limits the capacity of a photonic nanostructure in boosting optical responses including nonlinear conversion, photoluminescence, etc. In order to overcome these challenges, we presented an arrayed hyperbolic metamaterial (AHMM). This AHMM structure is applied to simultaneously enhance the three-photon and four-photon luminescence of upconversion nanoparticles. Excitingly, the enhancement of the three-photon process is 1 order of magnitude larger than previous records, and for the enhancing four-photon process, we achieve an enhancement of 3350 times, greatly beneficial for overcoming the crucial problem of low efficiency in near infrared light upconversion. Our results demonstrated a promising platform for realizing giant enhancements of light-matter interactions, holding potential in constructing various photonics applications such as the nonlinear light sources. (C) 2021 Chinese Laser Press

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