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Momentum flatband and superluminal propagation in a photonic time Moir\'e superlattice

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arxiv 2411.00215 v2 pith:GO7UEENT submitted 2024-10-31 physics.optics

Momentum flatband and superluminal propagation in a photonic time Moir\'e superlattice

classification physics.optics
keywords momentumbandsflatenergytimephotonicmoirpropagation
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Flat bands typically describe energy bands whose energy dispersion is entirely or almost entirely degenerate. One effective method to form flat bands is by constructing Moir\'e superlattices. Recently, there has been a shift in perspective regarding the roles of space (momentum) and time (energy) in a lattice, with the concept of photonic time crystals that has sparked discussions on momentum dispersion such as the presence of a bandgap in momentum. Here we propose a photonic time moir\'e superlattice achieved by overlaying two photonic time crystals with different periods. The resulting momentum bandgap of this superlattice supports isolated momentum bands that are nearly independent of energy, which we refer to as momentum flat bands. Unlike energy flat bands, which have zero group velocity, momentum flat bands exhibit infinitely large group velocity across a broad frequency range. Unlike previous optical media supporting broadband superluminal propagation based on gain, the effective refractive index of the momentum flat bands is real-valued, leading to more stabilized superluminal pulse propagation.

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Cited by 2 Pith papers

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

  1. Observation of full momentum bandgap in photonic time crystals

    physics.optics 2026-04 unverdicted novelty 8.0

    First experimental observation of a full (infinite) momentum bandgap spanning all momenta in a photonic time crystal, achieved via resonant enhancement in two modulated microwave metamaterial platforms.

  2. Observation of Moir\'e Time Crystal in Floquet-driven Rydberg Atomic Gases

    cond-mat.quant-gas 2026-07 conditional novelty 6.0

    Bichromatic Floquet driving of interacting Rydberg atoms produces a staggered beat-note subharmonic comb identified as a Moiré time crystal.