Numerical calculations are presented for the temperature dependence of the intersubband transition energies of uniformly doped quantum wells. Both the Hartree and exchange interactions cause the transition energy E₁₂ between the two lowest conduction subbands to depend on the dopant density. For a chosen dopant density, E₁₂ initially decreases with increasing temperature T. This decrease in E₁₂ as T increases compares well with the shift observed in the peak position of the infrared absorption coefficient (a blueshift as the temperature is decreased) of Si-doped GaAs/Alₓ{Ga}_{1{{-}}x}$As multiple quantum wells. Our calculations also show an interesting dependence of the intersubband transition energies due to the competition between the exchange and Hartree interactions as a function of the dopant density within the quantum well.
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Gumbs et al. (1995) studied this question.
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