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Abstract

Magnetoabsorption in far and mid IR ranges in double HgTe/CdHgTe quantum wells with inverted band structure has been studied in high magnetic fields up to 30 T. Numerous intraband and interband transitions have been revealed in the spectra and interpreted within axial 8 × 8 k·p model. Splitting of dominant magnetoabsorption lines resulting from optical transitions from hole-like zero-mode Landau level has been discovered and discussed in terms of a built-in electric field and collective phenomena.

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Authors and Affiliations

L.S. Bovkun
A.V. Ikonnikov
V.Ya. Aleshkin
K.V. Maremyanin
N.N. Mikhailov
S.A. Dvoretskii
S.S. Krishtopenko
F. Teppe
B.A. Piot
M. Potemski
M. Orlita
V.I. Gavrilenko
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Abstract

We present an overview of our technological achievements in the implementation of detector structures based on mercury cadmium telluride (MCT) heterostructures and nanostructures for IR and THz spectral ranges. We use a special MBE design set for the epitaxial layer growth on (013) GaAs substrates with ZnTe and CdTe buffer layers up to 3” in diameter with the precise ellipsometric monitoring in situ. The growth of MCT alloy heterostructures with the optimal composition distribution throughout the thickness allows for the realization of different types of many-layered heterostructures and quantum wells to prepare the material for fabricating single- or dual-band IR and THz detectors.

We also present the two-color broad-band bolometric detectors based on the epitaxial MCT layers that are sensitive in 150–300-GHz subterahertz and infrared ranges from 3 to 10 μm, which operate at the ambient or liquid nitrogen temperatures as photoconductors, as well as the detectors based on planar HgTe quantum wells. The design and dimensions of THz detector antennas are optimized for reasonable detector sensitivity values. A special diffraction limited optical system for the detector testing was designed and manufactured. We represent here the THz images of objects hidden behind a plasterboard or foam plastic packaging, obtained at the radiation frequencies of 70, 140, and 275 GHz, respectively.

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Authors and Affiliations

S.A. Dvoretsky
N.N. Mikhailov
V.G. Remesnik
Yu.G. Sidorov
V.A. Shvets
D.G. Ikusov
V.S. Varavin
J.V. Gumenjuk-Sichevska
A.G. Golenkov
I.O. Lysiuk
Z.F. Tsybrii
A.V. Shevchik-Shekera
F.F. Sizov
A.V. Latyshev
A.L. Aseev

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