Donor impurity states and related terahertz range nonlinear optical response in GaN cylindrical quantum wires: Effects of external electric and magnetic fields

We report a study on the optical absorption coefficient associated to hydrogenic impurity interstate transitions in zinc-blende GaN quantum wires of cylindrical shape taking into account the effects of externally applied static electric and magnetic fields. The electron states emerge within the effe...

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Autores:
Tipo de recurso:
Fecha de publicación:
2014
Institución:
Universidad de Medellín
Repositorio:
Repositorio UDEM
Idioma:
eng
OAI Identifier:
oai:repository.udem.edu.co:11407/1376
Acceso en línea:
http://hdl.handle.net/11407/1376
Palabra clave:
Electric fields
Gallium nitride
Light absorption
Magnetic fields
Nanowires
Semiconductor quantum wires
Zinc sulfide
Cylindrical quantum wires
Dielectric susceptibility
Effective mass approximation
Electric and magnetic fields
Non-perturbative solutions
Nonlinear optical absorption
Nonlinear optical response
Optical absorption coefficients
Nonlinear optics
Rights
restrictedAccess
License
http://purl.org/coar/access_right/c_16ec
Description
Summary:We report a study on the optical absorption coefficient associated to hydrogenic impurity interstate transitions in zinc-blende GaN quantum wires of cylindrical shape taking into account the effects of externally applied static electric and magnetic fields. The electron states emerge within the effective mass approximation, via the exact diagonalization of the donor-impurity Hamiltonian with parabolic confinement and external field effects. The nonlinear optical absorption is calculated using a recently derived expression for the dielectric susceptibility, obtained via a nonperturbative solution of the density-matrix Bloch equation. Our results show that this treatment eliminates not only the intensity-dependent bleaching effect but also the change in sign of the nonlinear contribution due to the combined effect of asymmetric impurity location and the applied electric field. © 2014 AIP Publishing LLC.