Coherent Topological Polariton Laser
Exciton-polariton
Condensed Matter - Mesoscale and Nanoscale Physics
TK
Polariton condensation
500
FOS: Physical sciences
3rd-DAS
QD Chemistry
530
01 natural sciences
TK Electrical engineering. Electronics Nuclear engineering
Topological lasing
QC Physics
Mesoscale and Nanoscale Physics (cond-mat.mes-hall)
0103 physical sciences
QD
Coherence
Su-Schrieffer-Heeger
QC
Physics - Optics
Optics (physics.optics)
DOI:
10.1021/acsphotonics.0c01958
Publication Date:
2021-04-16T06:09:39Z
AUTHORS (12)
ABSTRACT
25 pages, 6 figures<br/>Topological concepts have been applied to a wide range of fields in order to successfully describe the emergence of robust edge modes that are unaffected by scattering or disorder. In photonics, indications of lasing from topologically protected modes with improved overall laser characteristics were observed. Here, we study exciton-polariton microcavity traps that are arranged in a one-dimensional Su-Schrieffer-Heeger lattice and form a topological defect mode from which we unequivocally observe highly coherent polariton lasing. Additionally, we confirm the excitonic contribution to the polariton lasing by applying an external magnetic field. These systematic experimental findings of robust lasing and high temporal coherence are meticulously reproduced by a combination of a generalized Gross-Pitaevskii model and a Lindblad master equation model. Thus, by using the comparatively simple SSH geometry, we are able to describe and control the exciton-polariton topological lasing, allowing for a deeper understanding of topological effects on microlasers.<br/>
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