PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
October 17, 2025Nanomaterials3 citationsOpen Access

Refractive Index Sensing Properties of Metal–Dielectric Yurt Tetramer Metasurface

View Full Paper
SLShuqi LvPTPaerhatijiang TuersunSLShuyuan Li

Key Points

  • The proposed metasurface achieves a maximum refractive index sensitivity of 500.94 nm/RIU, indicating strong sensing capabilities.
  • Results indicate a high-quality Q-factor of 793.13, demonstrating the effectiveness of the proposed structure.
  • The exploration of Fano resonance modes contributes to optimizing wavelength tunability across visible to near-infrared spectra.
  • Polarization insensitivity enhances the versatility of the metasurface for various sensing applications.

Abstract

The metal–dielectric hybrid tetramer metasurface has received a lot of attention in the field of optical sensing owing to the excellent refractive index sensing performance. However, achieving simultaneous high-quality Q-factor, polarization insensitivity, multi-band tunability across visible to near-infrared spectra, and ultra-narrow linewidth is an urgent problem to be solved. To overcome this challenge, we proposed a metal–dielectric yurt tetramer metasurface. The finite-difference time-domain method was used to simulate the sensing properties. We explored the physical mechanism of different resonance modes, optimized the structure parameters of the metasurface, and investigated the influence of incident light and environmental parameters on the sensing properties. The results show that the proposed structure not only possesses a high Q-factor but also exhibits excellent wavelength tunability in the visible to near-infrared band and has polarization insensitivity. By skillfully introducing the structural size perturbation, the surface plasmon resonance mode and two Fano resonance modes are successfully excited at the wavelengths of 737.43 nm, 808.99 nm, and 939.50 nm. The light–matter interaction at the Fano resonance frequencies is highly enhanced so that a maximum refractive index sensitivity, figures of merit (FOM), and Q-factor of 500.94 nm/RIU, 491.12 RIU−1, and 793.13 are obtained. The narrowest full width at half maximum (FWHM) is 1.02 nm, respectively. This work provides a theoretical basis for the realization of a high-performance metasurface refractive index sensor.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Lv et al. (2025) studied this question.

synapsesocial.com/papers/68f19f1ade32064e504dda94https://doi.org/10.3390/nano15201570
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Observation of Ultra‐High‐Q Resonators in the Ultrasound via Bound States in the Continuum2024 · 24 citations
  2. 2The Collected Works of Eugene Paul Wigner1993 · 164 citations
  3. 3Surface plasmon subwavelength optics2003 · 11,632 citations
  4. 4Tunable dual-band metamaterial absorber at deep-subwavelength scale2021 · 20 citations
  5. 5Mid-infrared high performance dual-Fano resonances based on all-dielectric metasurface for refractive index and gas sensing2024 · 26 citations