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Area of Science:

  • Quantum optics
  • Condensed matter physics
  • Cavity optomechanics

Background:

  • Magnon-photon coupling is crucial for quantum technologies.
  • Coherent coupling typically leads to mode repulsion (anticrossing).
  • Dissipative effects in such systems are less understood.

Purpose of the Study:

  • To investigate dissipative magnon-photon coupling.
  • To differentiate it from coherent coupling effects.
  • To develop methods for controlling both coupling regimes.

Main Methods:

  • Experimental realization of magnon-photon coupling in a cavity.
  • Observation of hybridized magnon-photon modes.
  • Tuning of coupling parameters to control coherent and dissipative contributions.

Main Results:

  • Demonstrated dissipative coupling via the cavity Lenz effect.
  • Observed level attraction and mode coalescence, distinct from anticrossing.
  • Identified a matching condition where coherent and dissipative couplings cancel.

Conclusions:

  • Dissipative magnon-photon coupling is a significant phenomenon.
  • This effect offers new ways to control light-matter interactions.
  • Opens avenues for novel quantum devices and applications.