2025/12/26 by Taravati, Sajjad
#FOS: Physical sciences #Optics (physics.optics)
paper · doi:10.48550/arxiv.2512.22377
This paper introduces temporal Bragg gratings as a new class of broadband, reconfigurable parametric amplifiers. We present a comprehensive investigation of power amplification in these structures, where a spatially periodic refractive index profile is modulated in time at frequencies near the Bragg condition. Through systematic numerical simulations, we explore the impact of modulation location (high-index vs. low-index layers), modulation frequency relative to the Bragg frequency, and modulation amplitude on the gain spectrum and field dynamics. We demonstrate that both high-index and low-index layer modulations can produce significant parametric amplification, with high-index modulation yielding higher gain for comparable modulation depths. The amplification is frequency-agile, with gain peaks tunable across a broad spectral range, and exhibits strong asymmetry between sub-Bragg and supra-Bragg regimes, the former requires substantially stronger modulation for comparable gain. In the extreme sub-Bragg limit, the system transitions from discrete sideband amplification to a broadband gain continuum at high frequencies, explained by multi-phase-matching of parametric processes. These results provide a unified framework for designing dynamically reconfigurable optical amplifiers, tunable frequency converters, and broadband light sources using temporally modulated photonic crystals, offering new pathways toward active, agile, and integrable photonic devices.