Far-infrared imager and polarimeter for the Origins Space Telescope

被引:0
|
作者
Staguhn, Johannes [1 ,2 ]
Amatucci, Edward [2 ]
Bradley, Damon [2 ]
Chuss, David [3 ]
Corsetti, James [2 ]
DiPirro, Mike [2 ]
Fixsen, Dale [2 ,4 ]
Howard, Joseph [2 ]
Leisawitz, David [2 ]
Moseley, S. Harvey [2 ]
Meixner, Margaret [5 ]
Pope, Alexandra [6 ]
Vieira, Joaquin [7 ]
Wollack, Edward [2 ]
机构
[1] Johns Hopkins Univ, Dept Phys & Astron, NASA, Goddard Space Flight Ctr, Greenbelt, MD 20771 USA
[2] NASA, Goddard Space Flight Ctr, Greenbelt, MD 20771 USA
[3] Villanova Univ, Villanova, PA 19085 USA
[4] Univ Maryland, Dept Astron, College Pk, MD 20742 USA
[5] Space Telescope Sci Inst, 3700 San Martin Dr, Baltimore, MD 21218 USA
[6] Univ Massachusetts, Amherst, MA 01003 USA
[7] Univ Illinois, Urbana, IL 61801 USA
关键词
astronomy; detectors; infrared;
D O I
10.1117/1.JATIS.7.1.011016
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The far-infrared imager and polarimeter (FIP) for the Origins Space Telescope (Origins) is a basic far-infrared imager and polarimeter. The camera will deliver continuum images and polarization measurements at 50 and 250 mu m. Currently available detector technologies provide sufficient sensitivity for background limited observations from space, at least on a single pixel basis. FIP incorporates large next-generation superconducting detector arrays and our technology development plan will push the pixel numbers for the arrays to the required size of 8000. Two superconducting detector technologies are currently candidates for the instrument: transition edge sensors or microwave kinetic inductance devices. Using these detectors and taking advantage of the cryogenic telescope that is provided by Origins, FIP will achieve mapping speeds of up to eight orders of magnitude faster than what has been achieved by existing observatories. The science drivers for FIP include observations of solar system objects, dust properties, and magnetic field studies of the nearby interstellar medium, and large scale galaxy surveys to better constrain the star formation history of the universe to address one of the main themes of Origins: "How does the Universe work?" In addition to the science, the FIP instrument plays a critical functional role in aligning the mirrors during on orbit observatory commissioning. (C) The Authors. Published by SPIE under a Creative Commons Attribution 4.0 Unported License.
引用
收藏
页数:13
相关论文
共 50 条
  • [41] ESPRIT - A space interferometer concept for the far-infrared
    Wild, W.
    de Graau, Th.
    Helmich, F.
    Cernicharo, J.
    Gunst, A.
    Bos, A.
    den Herder, J-W
    Jackson, B.
    Langevelde, H-J
    Maat, P.
    Martin-Pintado, J.
    Noordam, J.
    Quirrenbach, A.
    Roelfsema, P.
    Venema, L.
    Wesselius, P.
    Yagoubov, P.
    SPACE TELESCOPES AND INSTRUMENTATION I: OPTICAL, INFRARED, AND MILLIMETER, PTS 1 AND 2, 2006, 6265
  • [42] Far-Infrared/Submillimeter interferometry: A space frontier
    Leisawitz, D
    Mather, JC
    Langer, W
    Moseley, SH
    Mundy, LG
    Swain, M
    Yorke, HW
    Zhang, X
    SCIENCE WITH THE ATACAMA LARGE MILLIMETER ARRAY, 2001, 235 : 237 - 240
  • [43] Novel far-infrared detectors for space applications
    Perera, AGU
    Shen, WZ
    Liu, HC
    Buchanan, M
    Schaff, WJ
    EPILAYERS AND HETEROSTRUCTURES IN OPTOELECTRONICS AND SEMICONDUCTOR TECHNOLOGY, 1999, 3725 : 254 - 259
  • [44] Far-infrared spectroscopy with Herschel Space Observatory
    Mookerjea, B.
    PROCEEDINGS OF THE 31ST MEETING OF THE ASTRONOMICAL SOCIETY OF INDIA, 2013, 2013, : 33 - 36
  • [45] Cryogenic far-infrared detectors for the Space Infrared Interferometric Telescope (SPIRIT) - art. no. 66870E
    Benford, Dominic J.
    Rinehart, Stephen A.
    Leisawitz, David T.
    Hyde, T. Tupper
    UV/OPTICAL/IR SPACE TELESCOPES: INNOVATIVE TECHNOLOGIES AND CONCEPTS III, 2007, 6687 : E6870 - E6870
  • [46] Data analysis for a rotating quarter-wave, far-infrared Stokes polarimeter
    Giudicotti, Leonardo
    Brombin, Matteo
    APPLIED OPTICS, 2007, 46 (14) : 2638 - 2648
  • [47] Far-infrared tangential interferometer/polarimeter design and installation for NSTX-U
    Scott, E. R.
    Barchfeld, R.
    Riemenschneider, P.
    Domier, C. W.
    Muscatello, C. M.
    Sohrabi, M.
    Kaita, R.
    Ren, Y.
    Luhmann, N. C., Jr.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2016, 87 (11):
  • [48] PIAA coronagraph for Origins Space telescope (OST) mid-infrared imager, spectrometer, coronagraph (MISC) instrument
    Fujishiro, N.
    Sakon, I.
    Enya, K.
    Guyon, O.
    Nishikawa, J.
    Murakami, N.
    Kotani, T.
    Tamura, M.
    Takahashi, A.
    Roellig, T. L.
    Ennico-Smith, K.
    ADVANCES IN OPTICAL AND MECHANICAL TECHNOLOGIES FOR TELESCOPES AND INSTRUMENTATION III, 2018, 10706
  • [49] Polarimeter for Space Solar Telescope
    Wang, D
    Deng, Y
    Ai, G
    Sun, C
    ADVANCED SOLAR POLARIMETRY: THEORY, OBSERVATION, AND INSTRUMENTA TION, 2001, 236 : 41 - 48
  • [50] FINER: Far-Infrared Nebular Emission Receiver for the Large Millimeter Telescope
    Tamura, Yoichi
    Sakai, Takeshi
    Kawabe, Ryohei
    Kojima, Takafumi
    Taniguchi, Akio
    Takekoshi, Tatsuya
    Kang, Haoran
    Shan, Wenlei
    Hagimoto, Masato
    Okauchi, Norika
    Tetsuka, Airi
    Inoue, Akio K.
    Kohno, Kotaro
    Tanaka, Kunihiko
    Bakx, Tom J. L. C.
    Fudamoto, Yoshinobu
    Fujita, Kazuyuki
    Harikane, Yuichi
    Hashimoto, Takuya
    Hatsukade, Bunyo
    Hughes, David H.
    Iino, Takahiro
    Kimura, Yuki
    Maezawa, Hiroyuki
    Matsuda, Yuichi
    Mawatari, Ken
    Nakajima, Taku
    Nakatsubo, Shunichi
    Oshima, Tai
    Sagawa, Hideo
    Schloerb, F. Peter
    Takahashi, Shigeru
    Taniguchi, Kotomi
    Tsujita, Akiyoshi
    Umehata, Hideki
    Yonetsu, Teppei
    Yun, Min S.
    MILLIMETER, SUBMILLIMETER, AND FAR-INFRARED DETECTORS AND INSTRUMENTATION FOR ASTRONOMY XII, PT 1, 2024, 13102