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May 2, 20260 citations

Tunable optical low-pass filtering based on chirped grating in arrays of graphene.

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YAYingquan AoXCXiaoling ChenMZMiaomiao Zhao

Key Points

  • The aim is to explore the optical properties of chirped gratings with embedded graphene to achieve tunable filtering.
  • Utilized the forward transmission matrix method (FTMM) for numerical investigation.
  • Analyzed structures with varying numbers of grating periods and chirped period gradients.
  • Examined the impact of graphene chemical potential on optical transmittance.
  • Demonstrated multimode resonance in chirped gratings with graphene arrays.
  • Measured significant wavelength-dependent decay in transmittance with a defined cutoff.
  • Highlighted the ability to modulate cutoff wavelength and bandwidth by adjusting chirped gradient and graphene properties.

Abstract

We numerically investigate asymmetric light propagation in chirped gratings with embedded graphene arrays (CG-GA). The structure comprises alternating graphene sheets and dielectric layers, featuring a linearly chirped spatial period. Using the forward transmission matrix method (FTMM), we demonstrate that CG-GA support multimode resonance. The transmittance of resonant modes exhibits a significant wavelength-dependent decay, ultimately reaching a cutoff. This phenomenon indicates the structure functions as a tunable optical low-pass filter, whose transmittance, cutoff wavelength, and bandwidth can be modulated by varying the number of grating periods, the chirped period gradient, and the graphene chemical potential. This study may be utilized for spectral scanning and adaptive optics applications.

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Cite This Study

Ao et al. (2026) studied this question.

synapsesocial.com/papers/69f5947e71405d493afff53chttps://doi.org/10.1371/journal.pone.0346777
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