Non-Markovian super-superradiance in a linear chain of up to 100 qubits
arXiv:2001.04999 · doi:10.1103/PhysRevResearch.1.032042
Abstract
We study non-Markovian enhancement effects in the spontaneous emission of a collective excitation in a linear chain of up to 100 qubits coupled to a 1D waveguide. We find that for a critical separation of qubits, the system exhibits super-superradiant (SSR) behavior leading to collective decay stronger than the usual Dicke superradiance. Here, time-delayed coherent quantum feedback effects are at play on top of the usual Dicke superradiance effects. We find a linear scaling for the SSR decay rate with increasing qubit number such that , where is the single emitter decay rate to a one-dimensional waveguide, as opposed to for Dicke superradiance. The SSR decay rate can be tuned with qubit separation distance and may therefore have application for quantum technologies.
References in corpus (3)
Cited by in corpus (30)
- Microwave Quantum Link between Superconducting Circuits Housed in Spatially Separated Cryogenic Systems
- Collective Radiance of Giant Atoms in Non-Markovian Regime
- Single-photon nonreciprocal excitation transfer with non-Markovian retarded effects
- Collective radiation from distant emitters
- Modelling quantum light-matter interactions in waveguide-QED with retardation and a time-delayed feedback: matrix product states versus a space-discretized waveguide model
- Single photon scattering from a chain of giant atoms coupled to a one-dimensional waveguide
- Distant emitters in ultrastrong waveguide QED: Ground-state properties and non-Markovian dynamics
- Observation of vacuum-induced collective quantum beats
- Superradiance paradox in waveguide lattices
- Optimal two-photon excitation of bound states in non-Markovian waveguide QED
- Collective Quantum Beats from Distant Multilevel Emitters
- Zeno Regime of Collective Emission: Non-Markovianity beyond Retardation
- Diagrammatic approach for analytical non-Markovian time-evolution: Fermi's two atom problem and causality in waveguide quantum electrodynamics
- Controllable optical response and tunable sensing based on self interference in waveguide QED systems
- Bound photonic pairs in 2D waveguide quantum electrodynamics
- Multidimensional super- and subradiance in waveguide quantum electrodynamics
- Coherent Control of Collective Spontaneous Emission through Self-interference
- Super- and subradiant dynamics of quantum emitters mediated by atomic matter waves
- Delay-induced spontaneous dark state generation from two distant excited atoms
- Two-dimensional chiral waveguide quantum electrodynamics: long range qubit correlations and flat-band dark polaritons
- Multiple electromagnetically induced transparency without a control field in an atomic array coupled to a waveguide
- Exact solution for the collective non-Markovian decay of two fully excited quantum emitters
- Influence of initial states on memory effects: A study of early-time superradiance
- Dipole-dipole Interactions Through a Lens
- Non-Markovian spontaneous emission in a tunable cavity formed by atomic mirrors
- Correlated and Critical Phenomena in Multipartite Quantum Non-Markovianity
- Stationary excitation waves and multimerization in arrays of quantum emitters
- Multimode-cavity picture of non-Markovian waveguide QED
- Weak-coupling bound states in semi-infinite topological waveguide QED
- From Superradiance to Superabsorption: An Exact Treatment of Non-Markovian Cooperative Radiation