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  4. Dissipative Parametric Gain in a GaAs / AlGaAs Superlattice
 
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2022
Journal Article
Title

Dissipative Parametric Gain in a GaAs / AlGaAs Superlattice

Abstract
Parametric generation of oscillations and waves is a paradigm, which is known to be realized in various physical systems. Unique properties of quantum semiconductor superlattices allow us to investigate highfrequency phenomena induced by the Bragg reflections and negative differential velocity of the miniband electrons. Effects of parametric gain in the superlattices at different strengths of dissipation have been earlier discussed in a number of theoretical works, but their experimental demonstrations are so far absent. Here, we report on the first observation of the dissipative parametric generation in a subcritically doped GaAs=AlGaAs superlattice subjected to a dc bias and a microwave pump. We argue that the dissipative parametric mechanism originates from a periodic variation of the negative differential velocity. It enforces excitation of slow electrostatic waves in the superlattice that provide a significant enhancement of the gain coefficient. This work paves the way for a development of a miniature solid-state parametric generator of GHz-THz frequencies operating at room temperature.
Author(s)
Čižas, Vladislovas
Center for Physical Sciences and Technology
Subačius, Liudvikas
Center for Physical Sciences and Technology
Alexeeva, Natalia V.
Center for Physical Sciences and Technology
Seliuta, Dalius
Center of Physical Sciences and Technology
Hyart, Timo
Institute of Physics, Polish Academy of Sciences
Köhler, Klaus  
Fraunhofer-Institut für Angewandte Festkörperphysik IAF  
Alekseev, Kirill N.
Center fot Physical Sciences and Technology
Valušis, Gintaras
Center for Physical Sciences and Technology
Journal
Physical review letters  
DOI
10.1103/PhysRevLett.128.236802
Additional link
Full text
Language
English
Fraunhofer-Institut für Angewandte Festkörperphysik IAF  
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