Two-atom Dicke model with atom-atom interaction
Lin Jiao, Han Pu
Abstract
Interactions among emitters provide a powerful means of controlling collective light--matter phenomena, yet their role in superradiant criticality has not been thoroughly investigated. Here we construct a minimal model that can yield analytical insights --- a Dicke model with two interacting atoms coupled to a single mode cavity --- to study such interaction effects. We show that interaction changes the phase boundary, and may even completely suppress the atom-photon coupling threshold for superradiance and change the universality class of the phase transition. We further study the dissipative phase transition and quantum dynamics in the presence of dissipation channels such as photon loss and spin relaxation. Our results demonstrate important roles played by the atom-atom interaction and how it can be engineered to control atom-photon coupling.
Create a lesson
Related papers
Continuous variable distributed quantum sensing in integrated photonics
Bethany Puzio, Oliver M. Green, Joel F. Tasker et al.
Securing quantum error correction against misleading advice from AI agents
A. Barış Özgüler
Exact logical error rates for magic state cultivation
Kwok Ho Wan, Ainhoa Zapirain
Hamiltonian engineering via pulses: beyond group averaging
Ivan Beschastnyi, Lucah Patel, David Tinoco
Logarithmic-depth quantum simulation of boson sampling
Changhun Oh
Entanglement swapping across a five-node relay in a multiplexed quantum-classical network
Andrew R. Cameron, Jordan M. Thomas, Alexandru Macridin et al.