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Extreme narrow band in Moir\'e Photonic time crystal

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arxiv 2411.05351 v1 pith:WYJLEIRI submitted 2024-11-08 physics.optics

classification physics.optics
keywords moirtimemodulationphotoniccrystalextremenarrowspace
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The Moir\'e superlattice has attracted growing interest in the electromagnetic and optical communities. Here, we extend this concept to time-varying photonic systems by superposing two binary modulations on the refractive index with different modulation periods, i.e., the Moir\'e photonic time crystal (PTC). Such a Moir\'e PTC leads to extreme narrow bands in momentum space which supports temporal localized modes, exhibiting periodically self-reconstructing pulse in time domain. We investigate how the modulation parameters change the bandstructure of the Moir\'e PTC and the temporal localization behavior. Moreover, we explore mode-locking mechanism in frequency space in the Moir\'e PTC, which points towards potential applications in mode-locked lasers with tunable time width of the emitted pulses. Our work therefore extends the study of PTC to complex modulation patterns, and unveils new possibility in wave manipulation with time-varying systems.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Observation of Momentum-Band Topology in PT-Symmetric acoustic Floquet Lattices

    cond-mat.mtrl-sci 2025-07 conditional novelty 6.0 of 10

    Bulk momentum-band topology is experimentally demonstrated in a PT-symmetric acoustic Floquet lattice via band inversion and a quantized Berry phase, with temporal interface states.

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