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Impact of chaos on the excited-state quantum phase transition of the Kerr parametric oscillator

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arxiv 2408.00934 v3 pith:ZZZBAXJV submitted 2024-08-01 quant-ph nlin.CD

Impact of chaos on the excited-state quantum phase transition of the Kerr parametric oscillator

classification quant-ph nlin.CD
keywords quantumesqptparametricphasechaosclassicalkerrnonlinearities
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The driven Kerr parametric oscillator, of interest to fundamental physics and quantum technologies, exhibits an excited state quantum phase transition (ESQPT) originating in an unstable classical periodic orbit. The main signature of this type of ESQPT is a singularity in the level density in the vicinity of the energy of the classical separatrix that divides the phase space into two distinct regions. The quantum states with energies below the separatrix are useful for quantum technologies, because they show a cat-like structure that protects them against local decoherence processes. In this work, we show how chaos arising from the interplay between the external drive and the nonlinearities of the system destroys the ESQPT and eventually eliminates the cat states. Our results demonstrate the importance of the analysis of theoretical models for the design of new parametric oscillators with ever larger nonlinearities.

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

  1. Asymmetry Control in a Parametric Oscillator for the Quantum Simulation of Chemical Activation

    quant-ph 2024-09 unverdicted novelty 6.0

    A continuously driven Kerr parametric oscillator with third-order nonlinearity is operated as a tunable asymmetric double-well quantum simulator to study dissipative tunneling rates relevant to chemical activation.