2002
DOI: 10.1002/1521-3951(200201)229:1<415::aid-pssb415>3.0.co;2-w
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Optical Spectroscopy on Non-Magnetic and Semimagnetic Single Quantum Dots in External Fields

Abstract: We demonstrate the ability to control the eigenstates in single quantum dots by applying welldefined external fields. Electric fields oriented in-plane as well as perpendicular to the disc-shaped dots allow a modification of the spatial part of the excitonic wavefunction, giving access to the charge distribution in the dot. In contrast, magnetic fields modify the spin part of the wavefunction, resulting in a Zeeman splitting and a diamagnetic shift of the photoluminescence emission. We used the unique property… Show more

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Cited by 10 publications
(5 citation statements)
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“…This is in line with previous measurements on epitaxial arsenide-based III/V QDs and selenide-based II/VI QDs, which showed redshifts in exciton recombination energies of up to ⌬E = 1.1 meV. [7][8][9] This behavior can be readily understood in terms of the QCSE. The electric field forces the electron and hole to opposite sides of the QD and band tilting leads to a reduction in the band gap and thus to a redshift of the PL.…”
supporting
confidence: 91%
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“…This is in line with previous measurements on epitaxial arsenide-based III/V QDs and selenide-based II/VI QDs, which showed redshifts in exciton recombination energies of up to ⌬E = 1.1 meV. [7][8][9] This behavior can be readily understood in terms of the QCSE. The electric field forces the electron and hole to opposite sides of the QD and band tilting leads to a reduction in the band gap and thus to a redshift of the PL.…”
supporting
confidence: 91%
“…The application of the external field produces an energy shift in the exciton recombination energy of up to 5.4 meV, much greater than the shifts reported in arsenide-based III/V QDs ͑up to 0.5 meV͒ and selenide-based II/VI QDs ͑up to 1.1 meV͒. [7][8][9] This shows that the effect of the lateral electric field is not negated by the presence of the strong internal field in a perpendicular direction…”
Section: ⌬⌫mentioning
confidence: 77%
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“…Similarly, Stark-shifted energy states of an 'artificial atom', i.e. of a quantum dot (QD), can in principle be used for electric field measurements near a surface since their discrete energy level structure is also subject to electric-field-induced shifts and alterations [18].…”
Section: Introductionmentioning
confidence: 99%