JOURNAL ARTICLE

Photoluminescence of negatively charged excitons in high magnetic fields

M. HayneC. L. JonesRia BogaertsC. RivaA. UsherF. M. PeetersF. HerlachV. V. MoshchalkovM. Henini

Year: 1999 Journal:   Physical review. B, Condensed matter Vol: 59 (4)Pages: 2927-2931   Publisher: American Physical Society

Abstract

We have studied the low-temperature photoluminescence of the two-dimensional electron gas in a single GaAs quantum well in magnetic fields up to 50 T over four orders of magnitude of illumination intensity. At the very highest illumination powers, where the recombination is excitonic at zero field, we find that the binding energy of both the singlet and triplet states of the negatively charged exciton ${(X}^{\ensuremath{-}})$ increase monotonically with the applied field above 15 T. This contradicts recent calculations for ${X}^{\ensuremath{-}},$ but is in agreement with adapted calculations for the binding energy of negative-donor centers. At low-laser powers we observe a strong transfer of luminescence intensity from the singlet (ground) state to the triplet (excited) state as the temperature is reduced below 1 K. This is attributed to the spin polarization of the two-dimensional electron gas by the applied magnetic field.

Keywords:
Photoluminescence Exciton Excited state Singlet state Atomic physics Magnetic field Physics Luminescence Electron Ground state Triplet state Binding energy Polarization (electrochemistry) Condensed matter physics Chemistry Optics Quantum mechanics

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Citation History

Topics

Quantum and electron transport phenomena
Physical Sciences →  Physics and Astronomy →  Atomic and Molecular Physics, and Optics
Semiconductor Quantum Structures and Devices
Physical Sciences →  Physics and Astronomy →  Atomic and Molecular Physics, and Optics
Physics of Superconductivity and Magnetism
Physical Sciences →  Physics and Astronomy →  Condensed Matter Physics
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