DocumentCode :
3101225
Title :
High performance dual-band long-wave infrared focal plane array based on type-II InAs/GaSb superlattices
Author :
Huang, Edward Kwei-wei ; Haddadi, Abbas ; Chen, Guanxi ; Nguyen, Binh-Minh ; Hoang, Minh-Anh ; McClintock, Ryan ; Razeghi, Manijeh
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Northwestern Univ., Evanston, IL, USA
fYear :
2011
fDate :
7-9 Dec. 2011
Firstpage :
1
Lastpage :
2
Abstract :
As requirements for infrared (IR) sensing become more stringent, demanding identification of the object rather than mere detection, imagers sensitive to a single waveband are no longer adequate in some applications. In these scenarios, the ability to “see” in multiple wavebands through a single infrared camera is indispensable. For terrestrial-based IR imaging, long-wave (LWIR) detectors are particularly suitable since the emission peaks of room temperature objects are positioned in the 8 to 12μm atmospheric window according to Planck´s law. The state-of-the-art dual-band detector systems in the LWIR spectra are based on mercury cadmium telluride, though control of its spatial bandgap uniformity towards this wavelength regime can be challenging [1]. Type-II superlattices (T2SLs) enjoy a unique advantage because of the way its band-structure is determined. The electronic structure of the superlattice is controlled by the layer thicknesses, which is solely determined by the impinging rate of the group III element and does not vary much with the substrate temperature nor the flux ratios. Because of this, a wide range of cutoff wavelengths can be realized with great spatial homogeneity, which is of great benefit for imager operability and manufacturing yield, especially as imager resolutions increase.
Keywords :
III-V semiconductors; band structure; focal planes; gallium compounds; indium compounds; semiconductor superlattices; InAs-GaSb; LWIR spectra; Plancks law; atmospheric window; band-structure; dual-band detector systems; electronic structure; flux ratios; high performance dual-band long-wave infrared focal plane array; imager operability; imager resolutions; infrared camera; infrared sensing; layer thicknesses; long-wave detectors; room temperature objects; spatial homogeneity; substrate temperature; superlattice; terrestrial-based IR imaging; type-II superlattices; Dark current; Detectors; Dual band; Educational institutions; Signal to noise ratio; Temperature measurement;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Semiconductor Device Research Symposium (ISDRS), 2011 International
Conference_Location :
College Park, MD
Print_ISBN :
978-1-4577-1755-0
Type :
conf
DOI :
10.1109/ISDRS.2011.6135344
Filename :
6135344
Link To Document :
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