DocumentCode
1094819
Title
Quantum theory of the complex dielectric constant of free carriers in polar semiconductors
Author
Jensen, Barbara
Author_Institution
Boston University, Boston, MA, USA
Volume
18
Issue
9
fYear
1982
fDate
9/1/1982 12:00:00 AM
Firstpage
1361
Lastpage
1370
Abstract
The optical constants and reflectivity of a semiconductor are known as functions of the real and imaginary parts of the complex dielectric constant. The imaginary part of the complex dielectric constant e2 is proportional to the optical conductivity, which has recently been calculated from the quantum density matrix equation of motion. The expression obtained for e2 reduces to the Drude result, as obtained from the quasi-classical Boltzmann transport equation, in the limit of low frequencies and elastic scattering mechanisms, and to the quantum result found using time dependent perturbation theory in the limit of high frequencies. This paper derives the real part of the complex dielectric constant e1 for a III-V or II-VI semiconductor with the band structure of the Kane theory, using the quantum density matrix method. The relation of e1 to the second order perturbation energy of the system is shown, and the reflectivity is a minimum when the second order perturbation energy vanishes. The quantum calculation for e1 gives approximately the same result as the Drude theory, except near the fundamental absorption edge, and reduces to the Drude result at low frequencies. Using the complex dielectric constant, the real and imaginary parts of the complex refractive index, the skin depth, the surface impedance, and the reflectivity are found. The plasma resonance is examined. The surface impedance and the skin depth are shown to reduce to the usual classical result in the limit that
and
, where
is the angular frequency of the applied field and τ is the electron scattering time.
and
, where
is the angular frequency of the applied field and τ is the electron scattering time.Keywords
Dielectric measurements; Quantum theory; Semiconductor materials; Dielectric constant; Frequency; Optical refraction; Optical scattering; Optical variables control; Particle scattering; Quantum mechanics; Reflectivity; Skin; Surface impedance;
fLanguage
English
Journal_Title
Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
0018-9197
Type
jour
DOI
10.1109/JQE.1982.1071713
Filename
1071713
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