2013
DOI: 10.1063/1.4817795
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Two-band finite difference method for the bandstructure calculation with nonparabolicity effects in quantum cascade lasers

Abstract: We present a two-band finite difference method for the bandstructure calculation of quantum cascade lasers (QCLs) based on the equivalent two-band model of the nonparabolic Schrödinger equation. Particular backward and forward difference forms are employed in the discretization procedure instead of the common central difference form. In comparison with the linearization approach of the nonparabolic Schrödinger equation, the method is as accurate and reliable as the linearization approach, while the velocity of… Show more

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Cited by 12 publications
(5 citation statements)
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“…According to the effective two-band model in a multiple QW structure, a two-component wave function is given by [18] is the transverse wave vector, r = + ˆxx yy is the transverse position vector, and A is the area of the material, respectively. Finally, f ( )…”
Section: Effective Two-band Model For Conduction Band Npbmentioning
confidence: 99%
See 1 more Smart Citation
“…According to the effective two-band model in a multiple QW structure, a two-component wave function is given by [18] is the transverse wave vector, r = + ˆxx yy is the transverse position vector, and A is the area of the material, respectively. Finally, f ( )…”
Section: Effective Two-band Model For Conduction Band Npbmentioning
confidence: 99%
“…The other numerical method was to solve a two-band Schrödinger equation based on the effective two-band model, which consisted of a 2×2 Hamiltonian acting on the two-dimensional envelope function [8,9]. This two-band model of the non-parabolic Schrödinger equation in combination with the FDM was successfully applied to the calculation of electronic subband energies in QCLs, which had the advantages of an easy-understanding form, acceptable accuracy, and faster computation time compared with the other methods [18]. However, the effective two-band FDM has not yet been applied to the theoretical treatment of intersubband optical dipole moments and the polar-opticalphonon (POP) scattering times with NPB effects, which is essential in the design of QCLs.…”
Section: Introductionmentioning
confidence: 99%
“…More sophisticated numerical methods have been developed, which allow solutions to be located directly, for example by converting the equation into a linear (but much larger) eigenvalue problem [17] 2 or by solving for the conduction-and valence-band states simultaneously [18]. However, as with the shooting method, this is a slow process that relies on an appropriate choice of energy cell size.…”
Section: Extension To Include Band Non-parabolicitymentioning
confidence: 99%
“…During past three decades, different models have been presented to describe the carrier and photon interactions in semiconductor lasers [1][2][3][4][5][6]. In different models, there is a trade off between desirable accuracy and model complexity [7,8].…”
Section: Introductionmentioning
confidence: 99%