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March 14, 2026Chaos Solitons & Fractals0 citationsOpen Access

Bistability of exciton–photon microcavities in the ultrastrong-coupling regime

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RARashed AljasmiHSHisham SatiHEHichem Eleuch

Key Points

  • The aim is to understand the bistability in exciton-photon microcavities operating in the ultrastrong-coupling regime.
  • Analyzed a coherently driven exciton-photon microcavity with Kerr nonlinearity.
  • Examined the stability of lower-polariton steady states.
  • Utilized the full Hopfield–Rabi–Kerr model for effective single-mode description.
  • Bistability observed is qualitatively similar to that of the strong-coupling regime.
  • Counter-rotating processes adjust the polariton spectrum, affecting detuning and nonlinearity.
  • Turning points and hysteresis windows differ from standard strong-coupling predictions.

Abstract

We investigate a coherently driven exciton–photon microcavity with Kerr nonlinearity in the ultrastrong-coupling regime. When the lower and upper polariton branches are well separated in energy, the full Hopfield–Rabi–Kerr model reduces to an effective single-mode description of the lower polariton. We analyze the stability of the lower-polariton steady states. We show that the resulting bistability is qualitatively similar to that in the strong-coupling regime. However, in the ultrastrong-coupling regime counter-rotating processes and the diamagnetic A 2 term renormalize the polariton spectrum and composition, changing the effective detuning Δ ̃ 1 and nonlinearity U LP g -dependency beyond the strong-coupling (RWA) picture. As a result, although the semiclassical bistability criterion keeps its standard Kerr-oscillator form, the turning points and hysteresis window are shifted relative to the strong-coupling prediction.

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Cite This Study

Aljasmi et al. (2026) studied this question.

synapsesocial.com/papers/69b4fc33b39f7826a300ce7ahttps://doi.org/10.1016/j.chaos.2026.118218
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