TY - JOUR
T1 - Tunable dual quasi-bound states in the continuum in metasurfaces based on phase-change materials
AU - Luo, Jinhu
AU - Zhou, Ling
AU - Tong, Xin
AU - Zhao, Ruihuang
AU - Wang, Jiaxin
AU - Huang, Lujun
AU - Du, Junjie
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/6
Y1 - 2025/6
N2 - Tunable metasurfaces, with their dynamic control over light–matter interactions, are increasingly important and attractive for various photonic applications. In this work, we present a dual-band tunable metasurface by leveraging quasi-bound states in the continuum (QBICs) based on TE21 and TE22 modes, achieved by incorporating a phase-change material (PCM) layer on a silicon-based metasurface. By introducing an asymmetric slit to break symmetry and utilizing GeTe PCM, we demonstrate simultaneous control over QBIC resonances through thermal modulation. The crystallization of GeTe leads to a substantial shift in resonance wavelengths exceeding 200 nm while retaining high Q-factors. Our design enables dynamic spectral control, offering new capabilities for multi-band filters, tunable resonators, and compact photonic devices. The findings underscore the potential of PCM enhanced QBIC metasurfaces for advanced applications in reconfigurable optics, adaptive imaging, and efficient light–matter interaction in nanophotonics.
AB - Tunable metasurfaces, with their dynamic control over light–matter interactions, are increasingly important and attractive for various photonic applications. In this work, we present a dual-band tunable metasurface by leveraging quasi-bound states in the continuum (QBICs) based on TE21 and TE22 modes, achieved by incorporating a phase-change material (PCM) layer on a silicon-based metasurface. By introducing an asymmetric slit to break symmetry and utilizing GeTe PCM, we demonstrate simultaneous control over QBIC resonances through thermal modulation. The crystallization of GeTe leads to a substantial shift in resonance wavelengths exceeding 200 nm while retaining high Q-factors. Our design enables dynamic spectral control, offering new capabilities for multi-band filters, tunable resonators, and compact photonic devices. The findings underscore the potential of PCM enhanced QBIC metasurfaces for advanced applications in reconfigurable optics, adaptive imaging, and efficient light–matter interaction in nanophotonics.
KW - Dynamic control
KW - Metasurface
KW - Phase change material-GeTe
KW - Quasi-BICS
UR - https://www.scopus.com/pages/publications/105001042306
U2 - 10.1016/j.optcom.2025.131757
DO - 10.1016/j.optcom.2025.131757
M3 - 文章
AN - SCOPUS:105001042306
SN - 0030-4018
VL - 583
JO - Optics Communications
JF - Optics Communications
M1 - 131757
ER -