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Revealing spontaneous symmetry breaking in continuous time crystals

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abstract

Spontaneous symmetry breaking plays a pivotal role in physics ranging from the emergence of elementary particles to the phase transitions of matter. The spontaneous breaking of continuous time translation symmetry leads to a novel state of matter named continuous time crystal (CTC). It exhibits periodic oscillation without the need for periodic driving, and the relative phases for repetitively realized oscillations are random. However, the mechanism behind the spontaneous symmetry breaking in CTCs, particularly the random phases, remains elusive. Here we propose and experimentally realize two types of CTCs based on distinct mechanisms: manifold topology and near-chaotic motion. We observe both types of CTCs in thermal atomic ensembles by artificially synthesizing spin-spin nonlinear interactions through a measurement-feedback scheme. Our work provides general recipes for the realization of CTCs, and paves the way for exploring CTCs in various systems.

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2024 1

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CONDITIONAL 1

representative citing papers

Nonlinear dynamics in an artificial feedback spin maser

physics.atom-ph · 2024-11-21 · conditional · novelty 6.0

Feedback-driven Bloch equation simulations show strong feedback produces harmonics, chaos, and frequency combs in spin masers, and a pulsed protocol creates a magnetic comb.

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  • Nonlinear dynamics in an artificial feedback spin maser physics.atom-ph · 2024-11-21 · conditional · none · ref 32 · internal anchor

    Feedback-driven Bloch equation simulations show strong feedback produces harmonics, chaos, and frequency combs in spin masers, and a pulsed protocol creates a magnetic comb.