Physical Review B · 2012 · 120 citations · 30 references
Wide-bandgap SemiconductorEngineeringSemiconductorsExcitonic LifetimeQuantum MaterialsQuantum WellsApplied Electric FieldElectric FieldCompound SemiconductorQuantum ScienceElectrical EngineeringPhotoluminescencePhysicsQuantum DeviceIndirect ExcitonsQuantum ChemistryExciton GroundNatural SciencesApplied PhysicsCondensed Matter PhysicsOptoelectronics
An accurate calculation of the exciton ground and excited states in AlGaAs and InGaAs coupled quantum wells (CQWs) in an external electric field is presented. An efficient and straightforward algorithm of solving the Schr\"odinger equation in real space has been developed and exciton binding energies, oscillator strengths, lifetimes, and absorption spectra are calculated for applied electric fields up to 100 kV/cm. It is found that in a symmetric 8--4--8-nm GaAs/Al${}_{0.33}$Ga${}_{0.67}$As CQW structure, the ground state of the system switches from direct to indirect exciton at approximately 5 kV/cm with dramatic changes of its binding energy and oscillator strength while the bright excited direct-exciton state remains almost unaffected. It is shown that the excitonic lifetime is dominated either by the radiative recombination or by tunneling processes at small/large values of the electric field, respectively. The calculated lifetime of the exciton ground state as a function of the bias voltage is in a quantitative agreement with low-temperature photoluminescence measurements. We have also made freely available a numerical code for calculation of the optical properties of direct and indirect excitons in CQWs in an electric field.
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Intensity of Optical Absorption by Excitons
R. J. Elliott · Physical Review · 1957 · 2.1K citations
Engineering, Optical Absorption, Absorption Spectroscopy +17
Towards Bose–Einstein condensation of excitons in potential traps
L. V. Butov, Chih‐Wei Lai, A. L. Ivanov et al. · Nature · 2002 · 448 citations