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◆ Journal of the Optical Society of America B2026-05-09· Materials science

Hybrid Si–GST polarization-insensitive dynamically tunable bifocal metalens operating at a 1.55  µm wavelength

D. Nath, Sadid Muneer, Sajid Muhaimin Choudhury

原始摘要(英文原文)· Original abstract
Metasurfaces have become a cornerstone of flat optics, enabling precise control over light propagation through nanoengineered materials. Dynamic and reconfigurable metalenses are key to next-generation flat-optics platforms, yet their practical realization remains limited by slow response, optical loss, and polarization sensitivity. The integration of chalcogenide phase-change materials with metasurface architectures offers a powerful platform for dynamic optical tunability, owing to materials such as Ge 2 Sb 2 Te 5 (GST) that can be reversibly switched between amorphous and crystalline states with distinct refractive indices. However, the strong optical absorption of crystalline GST in the visible to near-infrared range has hindered its widespread use in reconfigurable metalenses. In this study, we design an all-dielectric polarization-insensitive metasurface based on hybrid Si–GST nanostructures to realize a dynamically tunable bifocal metalens operating at 1.55µm. The device achieves a variable focal length from 70 to 200µm, with focusing efficiencies of 30% in the amorphous state and 20% in the crystalline state, as validated through finite-difference time-domain (FDTD) simulations. Using COMSOL Multiphysics, we show that flat-top laser excitation enables uniform, reversible phase transitions within tens of nanoseconds, amorphization in 8 ns and crystallization in 90 ns, without mechanical motion or electrical bias. For next-generation metasurfaces intended for uses including beam steering, dynamic holography, optical routing, multi-depth imaging, and optical communication, this method shows great promise due to its control and stability.
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Hybrid Si–GST polarization-insensitive dynamically tunable bifocal metalens operating at a 1.55  µm wavelength — 科研速览 Science Skim