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Updated: Sep 11, 2025

Fabrication of High Contrast Gratings for the Spectrum Splitting Dispersive Element in a Concentrated Photovoltaic System
Published on: July 18, 2015
Quasi-BIC empowered asymmetric grating for high-Q angularly tolerant THz filters with switchable
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THz narrowband filters are essential for various applications. Currently, they often suffer from substrate-induced parasitic losses and interference, stringent collimation requirements imposed by angle-dependent resonance excitation, and cumbersome peripheral optical components due to reflection-mode operation. To tackle these issues, geometrically protected BICs are employed in a substrate-free single-layer asymmetric dual grating structure of high-resistance silicon to achieve narrowband polarization-controlled dual transmissive/reflective THz filtering with high-Q factors, broad stopbands, and tolerance to incident angles, simultaneously. Collapse of BICs into Q-BICs is achieved by symmetry breaking via tuning widths of the grating air gaps rather than angular phase-matching conditions. By decreasing the asymmetric factor, theoretical Q factors can reach beyond 104with wide stopbands of ∼2THz. The filter exhibits stability in spectral positioning, linewidth preservation, and stopband consistency under oblique incidence up to 10°, demonstrating good angular insensitivity. Dynamic switching between transmissive/reflective filtering is realized by simply turning the polarization angle 90°. This work shows the monolithic integration of high-Q transmissive/reflective filters within a simple unified optical system, facilitating THz applications including trace molecular sensing and imaging with high spectral resolution.

