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Higher-order and fractional discrete time crystals in Floquet-driven Rydberg atoms

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arxiv 2402.13657 v4 pith:JD4QGJ6E submitted 2024-02-21 cond-mat.quant-gas physics.atom-ph

Higher-order and fractional discrete time crystals in Floquet-driven Rydberg atoms

classification cond-mat.quant-gas physics.atom-ph
keywords dtcsfractionalhigher-orderdiscretetimebeyondcrystalsexperimental
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Higher-order and fractional discrete time crystals (DTCs) are exotic phases of matter where the discrete time translation symmetry is broken into higher-order and non-integer category. Generation of these unique DTCs has been widely studied theoretically in different systems. However, no current experimental methods can probe these higher-order and fractional DTCs in any quantum many-body systems. We demonstrate an experimental approach to observe higher-order and fractional DTCs in Floquet-driven Rydberg atomic gases. We have discovered multiple $n$-DTCs with integer values of $n$ = 2, 3, and 4, and others ranging up to 14, along with fractional $n$-DTCs with $n$ values beyond the integers. The system response can transition between adjacent integer DTCs, during which the fractional DTCs are investigated. Study of higher-order and fractional DTCs expands fundamental knowledge of non-equilibrium dynamics and is promising for discovery of more complex temporal symmetries beyond the single discrete time translation symmetry.

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