4.7 Article

Parametric Instabilities of Interacting Bosons in Periodically Driven 1D Optical Lattices

期刊

PHYSICAL REVIEW X
卷 10, 期 1, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevX.10.011030

关键词

Atomic and Molecular Physics; Condensed Matter Physics; Quantum Physics

资金

  1. Deutsche Forschungsgemeinschaft [FOR2414, BL 574/17-1]
  2. European Commission (UQUAM) [5319278]
  3. (AQuS)
  4. Nanosystems Initiative Munich (NIM)
  5. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under Germany's Excellence [Strategy-EXC-2111-39081486]
  6. FRS-FNRS (Belgium)
  7. TopoCold ERC Starting Grant
  8. EPSRC Programme [EP/P009565/1]
  9. Emergent Phenomena in Quantum Systems initiative of the Gordon and Betty Moore Foundation
  10. U.S. Department of Energy, Office of Science, Office of Advanced Scientific Computing Research, Quantum Algorithm Teams Program
  11. Harvard-MIT CUA, NSF [DMR-1308435]
  12. AFOSR Quantum Simulation MURI, AFOSR-MURI Photonic Quantum Matter [FA95501610323, 71,72]
  13. EPSRC [EP/P009565/1] Funding Source: UKRI

向作者/读者索取更多资源

Periodically driven quantum systems are currently explored in view of realizing novel many-body phases of matter. This approach is particularly promising in gases of ultracold atoms, where sophisticated shaking protocols can be realized and interparticle interactions are well controlled. The combination of interactions and time-periodic driving, however, often leads to uncontrollable heating and instabilities, potentially preventing practical applications of Floquet engineering in large many-body quantum systems. In this work, we experimentally identify the existence of parametric instabilities in weakly interacting Bose-Einstein condensates in strongly driven optical lattices through momentum-resolved measurements, in line with theoretical predictions. Parametric instabilities can trigger the destruction of weakly interacting Bose-Einstein condensates through the rapid growth of collective excitations, in particular in systems with weak harmonic confinement transverse to the lattice axis. Understanding the onset of parametric instabilities in driven quantum matter is crucial for determining optimal conditions for the engineering of modulation-induced many-body systems.

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