学位论文详细信息
Strong Coupling and Magnetic Field Effects in Microcavity Light Sources.
Excitons;Polaritons;Strong Coupling;Laser;Bose-Einstein Condensation;Electrical Engineering;Engineering;Electrical Engineering
Das, AyanForrest, Stephen R. ;
University of Michigan
关键词: Excitons;    Polaritons;    Strong Coupling;    Laser;    Bose-Einstein Condensation;    Electrical Engineering;    Engineering;    Electrical Engineering;   
Others  :  https://deepblue.lib.umich.edu/bitstream/handle/2027.42/96077/ayandas_1.pdf?sequence=1&isAllowed=y
瑞士|英语
来源: The Illinois Digital Environment for Access to Learning and Scholarship
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【 摘 要 】

Room temperature Bose-Einstein condensation and electrically injected ultra-low threshold exciton-polariton lasing was achieved in a strong coupled microcavity.Exciton-polaritons are half-light, half-matter bosonic quasi-particles that are formed in a microcavity under the strong coupling regime. For optically injected devices and room temperature demonstration of lasing and dynamic condensation, a single GaN or ZnO nanowire (length ~ 1 μm and diameter ~ 100 nm) was used as the active material. These nanowires are unique in the sense that they are free of extended defects and have negligible strain and polarization field. Bose-Einstein condensation was achieved at room temperature by employing evaporative cooling technique in a compositionally graded Al(Ga)N nanowire with a spatial potential trap. For practical application in light sources currently limited by a high energy consumption, polariton lasers with electrical injection should be extremely useful. Exciton-polariton laser diodes were demonstrated in this dissertation, for the first time, by a combination of modulation dopingto overcome the ;;relaxation bottleneck;; and by applying a magnetic field to increase the exciton saturation density.

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