DocumentCode :
864651
Title :
Spatial Modulation of Electromagnetically Induced Transparency in Quantum Wells Using Monolayer Growth Islands
Author :
Sadeghi, S.M.
Author_Institution :
Dept. of Electr. & Comput. Eng., McMaster Univ., Hamilton, Ont.
Volume :
12
Issue :
6
fYear :
2006
Firstpage :
1275
Lastpage :
1282
Abstract :
In this paper, quantum interference effects and atomically flat monolayer thickness fluctuations (growth islands) have been used in quantum well (QW) structures to propose a method to spatially modulate their refractive indexes and absorption/gain. The interference effects are caused by an infrared (IR) laser field, near resonantly driving the conduction intersubband transitions of an n-doped QW. The growth islands, on the other hand, laterally modulate these effects along the QW plane. It is shown that, when such a QW structure is properly designed, one can utilize these features to generate submicrometer regions (isles) of electromagnetically induced transparency (EIT) in the plane of the QW. This process occurs as the refractive indexes of these regions are coherently enhanced. The same laser field, in other regions of this plane, generates a large amount of gain or absorption with smaller refractive indexes. It is also shown that by varying the intensity and wavelength of the IR laser, one can dynamically switch over the EIT process from the lateral regions associated with a specific type of growth islands to other regions associated with either different types of islands or the nominal region of the QW. In the absence of this laser, such submicrometer-scale photonic structures do not exist, and the QW is transparent with a laterally uniform refractive index. These results can introduce a new trend for the generation of active photonic lattices, planar integrated optical circuits, and active photonic nanostructures
Keywords :
optical modulation; quantum interference phenomena; refractive index; self-induced transparency; semiconductor quantum wells; conduction intersubband transitions; electromagnetically induced transparency; infrared laser field; monolayer growth islands; quantum interference; quantum wells; refractive index; spatial modulation; Atomic beams; Atomic layer deposition; Electromagnetic wave absorption; Fluctuations; Interference; Laser transitions; Quantum well lasers; Refractive index; Resonance; Switches; Active nanostructures; electromagnetically induced transparency (EIT); gain without inversion; intersubband transitions; nanophotonics; photonic nanostructures; quantum well (QW) structures; resonant enhancement of the refractive index;
fLanguage :
English
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
1077-260X
Type :
jour
DOI :
10.1109/JSTQE.2006.879578
Filename :
4032694
Link To Document :
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