Pump-power-driven mode switching in a microcavity device and its relation to Bose-Einstein condensation
arXiv:1612.04312 · doi:10.1103/PhysRevX.7.021045
Abstract
We investigate the switching of the coherent emission mode of a bimodal microcavity device, occurring when the pump power is varied. We compare experimental data to theoretical results and identify the underlying mechanism to be based on the competition between the effective gain on the one hand and the intermode kinetics on the other. When the pumping is ramped up, above a threshold the mode with the largest effective gain starts to emit coherent light, corresponding to lasing. In contrast, in the limit of strong pumping it is the intermode kinetics that determines which mode acquires a large occupation and shows coherent emission. We point out that this latter mechanism is akin to the equilibrium Bose-Einstein condensation of massive bosons. Thus, the mode switching in our microcavity device can be viewed as a minimal instance of Bose-Einstein condensation of photons. We, moreover, show that the switching from one cavity mode to the other occurs always via an intermediate phase where both modes are emitting coherent light and that it is associated with both superthermal intensity fluctuations and strong anticorrelations between both modes.
minor changes, typos corrected, acknowledgments supplemented, references added
References in corpus (10)
- Quantum fluids of light
- Exciton-polariton condensates
- Bose-Einstein condensation of photons in an optical microcavity
- Asymmetric scattering and non-orthogonal mode patterns in optical micro-spirals
- Coexistence and Survival in Conservative Lotka-Volterra Networks
- Bose-Einstein condensation of magnons in superfluid 3He
- Spatial Coherence Properties of One-Dimensional Exciton-Polariton-Condensates
- Evolutionary games of condensates in coupled birth-death processes
- Switchable lasing in coupled multimode microcavities
- Bose-Einstein condensation of magnons in atomic hydrogen gas
Cited by in corpus (18)
- Mutual coupling and synchronization of optically coupled quantum-dot micropillar lasers at ultra-low light levels
- Decondensation in non-equilibrium photonic condensates: when less is more
- Exploring the Photon-Number Distribution of Bimodal Microlasers
- Mesoscopic limit cycles in coupled nanolasers
- Interplay of coherent and dissipative dynamics in condensates of light
- Superthermal photon bunching in terms of simple probability distributions
- High-temperature nonequilibrium Bose condensation induced by a hot needle
- Topologically robust zero-sum games and Pfaffian orientation -- How network topology determines the long-time dynamics of the antisymmetric Lotka-Volterra equation
- On the number of Bose-selected modes in driven-dissipative ideal Bose gases
- Superbunching in cathodoluminescence: a master equation approach
- Non-equilibrium mode competition in a pumped dye-filled cavity
- Conditional Spectroscopy via Non-Stationary Optical Homodyne Quantum State Tomography
- A unified theory for excited-state, fragmented, and equilibrium-like Bose condensation in pumped photonic many-body systems
- Controlled and robust two-mode emission from the interplay of driving and thermalization in a dye-filled photonic cavity
- Quantum engineering of a synthetic thermal bath for bosonic atoms in a one-dimensional optical lattice via Markovian feedback control
- Noise-induced dynamics and photon statistics in bimodal quantum-dot micropillar lasers
- From Lasers to Photon Bose--Einstein Condensates: A Unified Description via an Open-Dissipative Bose--Einstein Distribution
- Quench dynamics in strongly coupled laser cavities