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Lasing in Bose-Fermi mixtures

Zitieren Sie bitte immer diese URN: urn:nbn:de:bvb:20-opus-168152
  • Light amplification by stimulated emission of radiation, well-known for revolutionising photonic science, has been realised primarily in fermionic systems including widely applied diode lasers. The prerequisite for fermionic lasing is the inversion of electronic population, which governs the lasing threshold. More recently, bosonic lasers have also been developed based on Bose-Einstein condensates of exciton-polaritons in semiconductor microcavities. These electrically neutral bosons coexist with charged electrons and holes. In the presence ofLight amplification by stimulated emission of radiation, well-known for revolutionising photonic science, has been realised primarily in fermionic systems including widely applied diode lasers. The prerequisite for fermionic lasing is the inversion of electronic population, which governs the lasing threshold. More recently, bosonic lasers have also been developed based on Bose-Einstein condensates of exciton-polaritons in semiconductor microcavities. These electrically neutral bosons coexist with charged electrons and holes. In the presence of magnetic fields, the charged particles are bound to their cyclotron orbits, while the neutral exciton-polaritons move freely. We demonstrate how magnetic fields affect dramatically the phase diagram of mixed Bose-Fermi systems, switching between fermionic lasing, incoherent emission and bosonic lasing regimes in planar and pillar microcavities with optical and electrical pumping. We collected and analyzed the data taken on pillar and planar microcavity structures at continuous wave and pulsed optical excitation as well as injecting electrons and holes electronically. Our results evidence the transition from a Bose gas to a Fermi liquid mediated by magnetic fields and light-matter coupling.zeige mehrzeige weniger

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Autor(en): Vladimir P. Kochereshko, Mikhail V. Durnev, Lucien Besombes, Henri Mariette, Victor F. Sapega, Alexis Askitopoulos, Ivan G. Savenko, Timothy C. H. Liew, Ivan A. Shelykh, Alexey V. Platonov, Simeon I. Tsintzos, Z. Hatzopoulos, Pavlos G. Savvidis, Vladimir K. Kalevich, Mikhail M. Afanasiev, Vladimir A. Lukoshkin, Christian Schneider, Matthias Amthor, Christian Metzger, Martin Kamp, Sven Hoefling, Pavlos Lagoudakis, Alexey Kavokin
URN:urn:nbn:de:bvb:20-opus-168152
Dokumentart:Artikel / Aufsatz in einer Zeitschrift
Institute der Universität:Fakultät für Physik und Astronomie
Sprache der Veröffentlichung:Englisch
Titel des übergeordneten Werkes / der Zeitschrift (Englisch):Scientific Reports
Erscheinungsjahr:2016
Band / Jahrgang:6
Heft / Ausgabe:20091
Originalveröffentlichung / Quelle:Scientific Reports 6:20091 (2016). DOI: 10.1038/srep20091
DOI:https://doi.org/10.1038/srep20091
Allgemeine fachliche Zuordnung (DDC-Klassifikation):5 Naturwissenschaften und Mathematik / 53 Physik / 530 Physik
Freie Schlagwort(e):Bose gas; Bose-Fermi; Fermi liquid; light-matter coupling; magnetic fields
Datum der Freischaltung:29.08.2019
Lizenz (Deutsch):License LogoCC BY: Creative-Commons-Lizenz: Namensnennung 4.0 International