Simultaneous blockade of a photon phonon, and magnon induced by a two-level atom
arXiv:2009.09871 · doi:10.1103/PhysRevA.101.063838
Abstract
The hybrid microwave optomechanical-magnetic system has recently emerged as a promising candidate for coherent information processing because of the ultrastrong microwave photon-magnon coupling and the longlife of the magnon and phonon. As a quantum information processing device, the realization of a single excitation holds special meaning for the hybrid system. In this paper, we introduce a single two-level atom into the optomechanical-magnetic system and show that an unconventional blockade due to destructive interference cannot offer a blockade of both the photon and magnon. Meanwhile, under the condition of single excitation resonance, the blockade of the photon, phonon, and magnon can be achieved simultaneously even in a weak optomechanical region, but the phonon blockade still requires the cryogenic temperature condition.
10 pages, 7 figures
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- Multiphoton blockade and antibunching in an optical cavity coupled with dipole-dipole interacting -type atoms
- Superfluid-Mott insulator quantum phase transition in a cavity optomagnonic system
- Topological state transfers in cavity-magnon system
- Quantum information diode based on a magnonic crystal
- Phase-controlled robust tripartite quantum entanglement in cavity-magnon optomechanics
- Nonreciprocal Photon Blockade in an Asymmetric Cavity
- Two-Polariton Blockade via Ultrastrong Light-Matter Coupling