Spin-Photon Interaction in a Cavity with Time-Reversal Symmetry Breaking
arXiv:1405.7458 · doi:10.1103/PhysRevB.89.224407
Abstract
Employing a sapphire whispering gallery mode resonator, we demonstrate features of the spin-photon interaction in cavities with broken time-reflection symmetry. The broken symmetry leads to a lifting of the degeneracy between left-handed and right-handed polarised cavity photons, which results in an observable gyrotropic effect. In the high- cavity limit, such a situation requires a modification of the Tavis-Cummings Hamiltonian to take into account conservation of spin angular momentum and the corresponding selection rules. As a result, the system is represented by a system of two linearly coupled bosonic modes, with each one coupled to its own sub-ensemble of two-level systems with different energy splittings. In the experimental example, these sub-ensembles originate from Fe impurity ions effectively seen as a two level systems at the interaction frequency. The temperature dependence of the population of each sub-ensemble (in terms of effective susceptibility of the medium) is determined experimentally in accordance with the theoretical predictions revealing various paramagnetic impurity types in the solid. The regimes of backscatterer and spin ensemble domination are discussed and compared.
Phys. Rev. B, 2014
References in corpus (3)
Cited by in corpus (8)
- High Cooperativity Cavity QED with Magnons at Microwave Frequencies
- Precision measurement of the microwave dielectric loss of sapphire in the quantum regime with parts-per-billion sensitivity
- Strong Coupling Between P1 Diamond Impurity Centres and 3D Lumped Photonic Microwave Cavity
- Experimental generation of circulating cavity magnon polaritons
- Strong Coupling between Whispering Gallery Modes and Chromium Ions in Ruby
- Strong Coupling Between Whispering Gallery Photons and Spin States of Iron Group Impurity Ions
- Dielectric Properties of Single Crystal Calcium Tungstate
- Coupling 4H-Silicon Carbide spins to a microwave resonator at milli-Kelvin temperature