Mid-wavelength and long-wavelength infrared focal planes for smallsat applications

被引:2
|
作者
Gunapala, Sarath [1 ]
Ting, David [1 ]
Rafol, Sir [1 ]
Soibel, Alexander [1 ]
Khoshakhlagh, Arezou [1 ]
Keo, Sam [1 ]
Pepper, Brian [1 ]
Fisher, Anita [1 ]
Hill, Cory [1 ]
Pagano, Thomas [1 ]
Sood, Ashok [2 ]
Zeller, John [2 ]
Lucey, Paul [3 ]
Wright, Robert [3 ]
Nunes, Miguel [3 ]
Flynn, Luke [3 ]
Babu, Sachidananda [4 ]
Ghuman, Parminder [4 ]
机构
[1] CALTECH, Jet Prop Lab, Ctr Infrared Photodetectors, Pasadena, CA 91125 USA
[2] Magnolia Opt Technol Inc, Albany, NY 12203 USA
[3] Univ Hawaii Manoa, Hawaii Inst Geophys & Planetol, Honolulu, HI 96822 USA
[4] NASA, Earth Sci Technol Off, Greenbelt, MD USA
基金
美国国家航空航天局;
关键词
type-II superlattice; infrared detector; quantum efficiency; digital; focal plane array; metasurface; flatlens;
D O I
10.1117/12.2619573
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this presentation, we will report our recent efforts in achieving high performance in Antimonides type-II superlattice (T2SL) based infrared photodetectors using the barrier infrared detector (BIRD) architecture. The high operating temperature ( HOT) BIRD focal plane arrays ( FPAs) offer the same high performance, uniformity, operability, manufacturability, and affordability advantages as InSb. However, mid-wavelength infrared ( MWIR) HOT-BIRD FPAs can operate at significantly higher temperatures (> 150K) than InSb FPAs (typically 80K). Moreover, while InSb has a fixed cutoff wavelength (similar to 5.4 mu m), the HOT-BIRD offers a continuous adjustable cutoff wavelength, ranging from similar to 4 mu m to > 15 mu m, and is therefore also suitable for long wavelength infrared ( LWIR) as well. The LWIR detectors based on the BIRD architecture has also demonstrated significant operating temperature advantages over those based on traditional p-n junction designs. Two 6U SmalSat missions CIRAS (Cubesat Infrared Atmospheric Sounder) and HyTI (Hyperspectral Thermal Imager) are based on JPL's T2SL BIRD FPAs. Based on III-V compound semiconductors, the BIRD FPAs offer a breakthrough solution for the realization of low cost (high yield), high-performance FPAs with excellent uniformity and pixel-to-pixel operability. Furthermore, we will discuss the advantages of the utilization of all digital read out integrated circuits with HOT-BIRDs.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Theoretical comparison of mid-wavelength infrared and long-wavelength infrared lasers
    Flatté, ME
    Olesberg, JT
    Grein, CH
    PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY OF LONDON SERIES A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2001, 359 (1780): : 533 - 544
  • [2] 1024 x 1024 pixel mid-wavelength and long-wavelength infrared QWIP focal plane arrays for imaging applications
    Gunapala, SD
    Bandara, SV
    Liu, JK
    Hill, CJ
    Rafol, SB
    Mumolo, JM
    Trinh, JT
    Tidrow, MZ
    Le Van, PD
    SEMICONDUCTOR SCIENCE AND TECHNOLOGY, 2005, 20 (05) : 473 - 480
  • [3] InAs/InAsSb Type-II Superlattice: A Promising Material for Mid-Wavelength and Long-Wavelength Infrared Applications
    Cellek, Oray O.
    Li, Hua
    Shen, Xiao-Meng
    Lin, Zhiyuan
    Steenbergen, Elizabeth H.
    Ding, Ding
    Liu, Shi
    Zhang, Qiang
    Kim, Ha Sul
    Fan, Jin
    DiNezza, Michael J.
    Dettlaff, W. Hank G.
    Webster, Preston T.
    He, Zhaoyu
    Li, Jing-Jing
    Johnson, Shane R.
    Smith, David J.
    Zhang, Yong-Hang
    INFRARED TECHNOLOGY AND APPLICATIONS XXXVIII, PTS 1 AND 2, 2012, 8353
  • [4] NEWBORNS DISCRIMINATION AMONG MID-WAVELENGTH AND LONG-WAVELENGTH STIMULI
    ADAMS, RJ
    JOURNAL OF EXPERIMENTAL CHILD PSYCHOLOGY, 1989, 47 (01) : 130 - 141
  • [5] Design of a long focal length mid-wavelength infrared optical system
    Duan Jing
    Zhang Zhanpeng
    Liu Kai
    Shan Qiusha
    Jiang Kai
    Yan Peipei
    FOURTH SEMINAR ON NOVEL OPTOELECTRONIC DETECTION TECHNOLOGY AND APPLICATION, 2018, 10697
  • [6] InP based QWIPs for long-wavelength and mid-wavelength bands detection
    Bahir, G
    Gusakov, Y
    Maimon, S
    Cohen, G
    Ritter, D
    Finkman, E
    INFRARED TECHNOLOGY AND APPLICATIONS XXV111, PTS 1 AND 2, 2003, 4820 : 663 - 670
  • [7] Development of mid-wavelength and long-wavelength megapixel portable QWIP imaging cameras
    Gunapala, SD
    Bandara, SV
    Liu, JK
    Hill, CJ
    Rafol, SB
    Mumolo, JM
    Trinh, JT
    Tidrow, MZ
    LeVan, PD
    INFRARED PHYSICS & TECHNOLOGY, 2005, 47 (1-2) : 67 - 75
  • [8] A transparent zinc oxide based metamaterial for perfect absorption of long-wavelength and mid-wavelength infrared spectral bands
    Shrivastava, Vishnu Prasad
    Radhawal, Kunal
    Rawat, Satyam
    Khare, Richa
    MATERIALS TODAY COMMUNICATIONS, 2023, 36
  • [9] Nanowire grid polarizers for mid- and long-wavelength infrared applications
    George, Matthew C.
    Wang, Bin
    Petrova, Rumyana
    Li, Hua
    Bergquist, Jonathon
    INFRARED TECHNOLOGY AND APPLICATIONS XXXIX, 2013, 8704
  • [10] 128 x 128 long-wavelength/mid-wavelength two-color HgCdTe infrared focal plane array detector with ultralow spectral cross talk
    Hu, Weida
    Ye, Zhenhua
    Liao, Lei
    Chen, Honglei
    Chen, Lu
    Ding, Ruijun
    He, Li
    Chen, Xiaoshuang
    Lu, Wei
    OPTICS LETTERS, 2014, 39 (17) : 5184 - 5187