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Direct Observation of k-Gaps in Dynamically Modulated Phononic Time Crystal
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Floquet time crystals, characterized by momentum gaps (k-gaps), have sparked intense interest across various branches of physics due to their intriguing dynamics and promising applications. Despite growing theoretical efforts, the realization and observation of phononic time crystals, especially for airborne sound, remain significant experimental challenges. In this work, we demonstrate a phononic time crystal by integrating discrete resonant meta-atoms into a one-dimensional acoustic waveguide, effectively creating a homogeneous, time-varying metamaterial. By dynamically modulating the effective compressibility, we experimentally observe exponential acoustic wave amplification, offering clear evidence of k-gap formation. Furthermore, we showcase the versatility of our platform by inducing momentum band folding and double k-gap phenomena via quasi-periodic temporal modulation. This flexible and reconfigurable approach not only enables the design of tailor-made resonant responses but also opens new avenues for realizing higher-dimensional phononic time crystals and exploring nontrivial topological dynamics in time-modulated media.
Forward citations
Cited by 2 Pith papers
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Disorder-immune momentum band winding topology
Momentum bands in temporally modulated systems exhibit winding topology that enforces disorder-immune localization at time interfaces.
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Two-Dimensional Space-Time Groups: Classification and Applications
Complete classification of 2+1D space-time groups yields 275 crystals with novel non-symmorphic symmetries enabling chirality-selective responses and horizontal cone structures in metamaterials.
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