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Luminescence of double quantum wells subject to in-plane magnetic fields

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Dohler,  GH
Max Planck Research Group, Max Planck Institute for the Science of Light, Max Planck Society;

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Malzer,  S
Max Planck Research Group, Max Planck Institute for the Science of Light, Max Planck Society;

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Citation

Orlita, M., Grill, R., Hlidek, P., Zvara, M., Dohler, G., Malzer, S., et al. (2005). Luminescence of double quantum wells subject to in-plane magnetic fields. PHYSICAL REVIEW B, 72(16): 165314. doi:10.1103/PhysRevB.72.165314.


Cite as: https://hdl.handle.net/11858/00-001M-0000-002D-6DC4-5
Abstract
We report on photoluminescence (PL) measurements of a symmetric GaAs/AlGaAs double quantum well (DQW) in high magnetic fields. For this study, a selectively contacted p-delta n-DQW-delta n-p structure was chosen, allowing an independent tuning of the electron density in the DQW and thus a creation of a two-dimensional electron gas. Our attention was focused on phenomena in in-plane magnetic fields, where the field-induced depopulation of the antibonding subband observable in the PL spectra as a so-called N-type kink was predicted by Huang and Lyo (HL) [Phys. Rev. B 59, 7600 (1999)]. Whereas the equivalent behavior has been observed several times in the electric transport measurements and a proper theoretical description has been found, to the best of our knowledge, no PL experiment in a direct comparison with the theoretical model developed by HL has ever been published. We carried out a self-consistent calculation based on their model and achieved a good agreement with our experimental results. Additionally, the influence of the excitonic interaction on the PL spectra, not taken into account by HL, is also discussed. This enables us to explain small deviations from the HL theory. The interpretation of the in-plane magnetic field measurements is supported by the experiment with the magnetic field in the perpendicular orientation that allows a sufficiently accurate estimation of the electron density in the DQW. Distinctive renormalization effects of DQW subbands at various electron densities are also observed and discussed.