Quantum coherence of a long-lifetime exciton-polariton condensate
arXiv:2407.00844 · doi:10.1038/s43246-025-00848-6
Abstract
In recent years, quantum information science has made significant progress, leading to a multitude of quantum protocols for the most diverse applications. States carrying resources such as quantum coherence are a key component for these protocols. In this study, we optimize the quantum coherence of a nonresonantly excited exciton-polariton condensate of long living polaritons by minimizing the condensate's interaction with the surrounding reservoir of excitons and free carriers. By combining experimental phase space data with a displaced thermal state model, we observe how quantum coherence builds up as the system is driven above the condensation threshold. Our findings demonstrate that a spatial separation between the condensate and the reservoir enhances the state's maximum quantum coherence directly beyond the threshold. These insights pave the way for integrating polariton systems into hybrid quantum devices and advancing applications in quantum technologies.
17 pages, 5 figures
References in corpus (13)
- Observation of Superfluidity of Polaritons in Semiconductor Microcavities
- Quantum technologies with hybrid systems
- A universal qudit quantum processor with trapped ions
- Continuous entanglement distribution over a transnational 248 km fibre link
- Polaritonic neuromorphic computing outperforms linear classifiers
- Slow reflection and two-photon generation of microcavity exciton-polaritons
- Ultralong temporal coherence in optically trapped exciton-polariton condensates
- Influence of interactions with non-condensed particles on the coherence of a 1D polariton condensate
- Quantifying quantum coherence in polariton condensates
- Tracking quantum coherence in polariton condensates with time-resolved tomography
- Coherence measurements of polaritons in thermal equilibrium reveal a power law for two-dimensional condensates
- Critical fluctuations in a confined driven-dissipative quantum condensate
- Loss of Antibunching