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Phonon-induced transition between entangled and nonentangled photon emission in constantly driven quantum-dot-cavity systems

Title data

Seidelmann, Tim ; Cosacchi, Michael ; Cygorek, M. ; Reiter, D. E. ; Vagov, Alexei ; Axt, Vollrath Martin:
Phonon-induced transition between entangled and nonentangled photon emission in constantly driven quantum-dot-cavity systems.
In: Physical Review B. Vol. 107 (2023) Issue 7 . - 075301.
ISSN 0163-1829
DOI: https://doi.org/10.1103/PhysRevB.107.075301

Official URL: Volltext

Project information

Project financing: Deutsche Forschungsgemeinschaft

Abstract in another language

Entangled photon pairs are essential for many applications in quantum technologies. Recent theoretical studies demonstrated that different types of entangled Bell states can be created in a constantly driven four-level quantum emitter-cavity system. Unlike other candidates for the realization of the four-level emitter, semiconductor quantum dots unavoidably interact with their environment, resulting in carrier-phonon interactions. Surprisingly, phonons change the entanglement of emitted photon pairs in a qualitative way, already at low temperatures on the order of 4 K. While one type of Bell state can still be generated using small driving strengths, the other type is suppressed due to phonon interactions in strongly confined quantum dots. The degree of entanglement decreases with rising temperature and driving strength until it vanishes at a certain parameter value. Because it remains zero afterward, we encounter a phonon-induced transition between entangled and nonentangled photon emission that resembles a phase transition. The transition occurs at temperatures below 30 K and, independent of the driving strength, the concurrence as a function of the reduced temperature is found to obey a power law with exponent one near the transition point.

Further data

Item Type: Article in a journal
Refereed: Yes
Keywords: Quantum Optics; quantum dot; phonon-induced phase transition; path-integrals; numerically exact; entanglement; microcavity; polarization entaglement; pure dephasing; phonons; multi-phonon processes; quantum dissipative dynamics
Subject classification: condensed matter physics (theoretical)
Institutions of the University: Faculties > Faculty of Mathematics, Physics und Computer Science > Department of Physics
Faculties > Faculty of Mathematics, Physics und Computer Science > Department of Physics > Chair Theoretical Physics III > Chair Theoretical Physics III - Univ.-Prof. Dr. Martin Axt
Result of work at the UBT: Yes
DDC Subjects: 500 Science > 530 Physics
Date Deposited: 20 Feb 2023 08:15
Last Modified: 20 Feb 2023 08:15
URI: https://eref.uni-bayreuth.de/id/eprint/73870