The Atacama Large Aperture Submillimetre Telescope (AtLAST)

被引:36
|
作者
Klaassen, Pamela [1 ]
Mroczkowski, Tony K. [2 ]
Cicone, Claudia [3 ]
Hatziminaoglou, Evanthia [2 ]
Sartori, Sabrina [4 ]
De Breuck, Carlos [2 ]
Bryan, Sean A. [5 ]
Dicker, Simon R. [6 ]
Duran, Carlos [2 ,7 ]
Groppi, Christopher E. [4 ]
Kaercher, Hans [8 ]
Kawabe, Ryohei [9 ,10 ,11 ]
Kohno, Kotaro [12 ,13 ]
Geach, James [14 ]
机构
[1] Royal Observ Edinburgh, UK Astron Technol Ctr, Edinburgh EH9 3HJ, Midlothian, Scotland
[2] European Southern Observ ESO, Karl Schwarzschild Str 2, D-85748 Garching, Germany
[3] Univ Oslo, Inst Theoret Astrophys, POB 1029, N-0315 Oslo, Norway
[4] Univ Oslo, Dept Technol Syst, NO-2027 Kjeller, Norway
[5] Arizona State Univ, Sch Earth & Space Explorat, Tempe, AZ 85287 USA
[6] Univ Penn, Dept Phys & Astron, 209 South 33rd St, Philadelphia, PA 19104 USA
[7] European Southern Observ ESO, Santiago, Chile
[8] Kirchgasse 4, D-61184 Karben, Germany
[9] Univ Tokyo, Dept Astron, Bunkyo Ku, 7-3-1 Hongo, Tokyo 1130033, Japan
[10] Natl Astron Observ Japan, Mitaka, Tokyo 1818588, Japan
[11] Grad Univ Adv Studies SOKENDAI, 2-21-1 Osawa, Mitaka, Tokyo 1818588, Japan
[12] Univ Tokyo, Inst Astron, 2-21-1 Osawa, Mitaka, Tokyo 1810015, Japan
[13] Univ Tokyo, Res Ctr Early Universe, Sch Sci, Bunkyo Ku, 7-3-1 Hongo, Tokyo 1130033, Japan
[14] Univ Hertfordshire, Ctr Astrophys Res, Sch Phys Astron & Math, Hatfield AL10 9AB, Herts, England
来源
GROUND-BASED AND AIRBORNE TELESCOPES VIII | 2020年 / 11445卷
关键词
Submillimetre; single-dish telescope; design; sustainable science; throughput; heterodyne; bolometric; kinetic inductance detectors; integral field unit; mm-VLBI; SUNYAEV-ZELDOVICH SIGNAL; RELATIVISTIC CORRECTIONS; MOLECULAR GAS; CLUSTERS; SPECTROMETER; GALAXY;
D O I
10.1117/12.2561315
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The coldest and densest structures of gas and dust in the Universe have unique spectral signatures across the (sub-)millimetre bands (nu approximate to 30 - 950 GHz). The current generation of single dish facilities has given a glimpse of the potential for discovery, while sub-mm interferometers have presented a high resolution view into the finer details of known targets or in small-area deep fields. However, significant advances in our understanding of such cold and dense structures are now hampered by the limited sensitivity and angular resolution of our sub-mm view of the Universe at larger scales. In this context, we present the case for a new transformational astronomical facility in the 2030s, the Atacama Large Aperture Submillimetre Telescope (AtLAST). AtLAST is a concept for a 50-m-class single dish telescope, with a high throughput provided by a 2 deg - diameter Field of View, located on a high, dry site in the Atacama with good atmospheric transmission up to nu similar to 1 THz, and fully powered by renewable energy. We envision AtLAST as a facility operated by an international partnership with a suite of instruments to deliver the transformative science that cannot be achieved with current or in-construction observatories. As an 50m-diameter telescope with a full complement of advanced instrumentation, including highly multiplexed high-resolution spectrometers, continuum cameras and integral field units, AtLAST will have mapping speeds hundreds of times greater than current or planned large aperture (> 12m) facilities. By reaching confusion limits below L-* in the distant Universe, resolving low-mass protostellar cores at the distance of the Galactic Centre, and directly mapping both the cold and the hot (the Sunyaev-Zeldovich effect) circumgalactic medium of galaxies, AtLAST will enable a fundamentally new understanding of the sub-mm Universe.
引用
收藏
页数:20
相关论文
共 50 条
  • [31] Large aperture diffractive optical telescope: A review
    Zhang, Haolin
    Liu, Hua
    Xu, Wenbin
    Lu, Zhenwu
    OPTICS AND LASER TECHNOLOGY, 2020, 130
  • [32] Seeing metrology of large aperture mirror of telescope
    Yang F.
    An Q.-C.
    Zhang J.
    Zhao H.-C.
    Guo P.
    Jiang H.-B.
    Guangxue Jingmi Gongcheng/Optics and Precision Engineering, 2017, 25 (10): : 2572 - 2579
  • [33] Large aperture cooled telescope mission: SPICA
    Matsumoto, T
    IR SPACE TELESCOPES AND INSTRUMENTS, PTS 1 AND 2, 2003, 4850 : 1091 - 1096
  • [34] The Atacama Cosmology Telescope
    Kosowsky, A
    NEW ASTRONOMY REVIEWS, 2003, 47 (11-12) : 939 - 943
  • [35] Optimal diluted aperture configuration for large and extremely large telescope
    Flores, JL
    Strojnik, M
    Paez, G
    INFRARED SPACEBORNE REMOTE SENSING IX, 2001, 4486 : 533 - 542
  • [36] Atacama Desert, Chile 6 Big Step for Extremely Large Telescope
    不详
    SCIENCE, 2011, 334 (6062) : 1479 - 1479
  • [37] A NEW TYPE OF ASTRONOMICAL TELESCOPE WITH AN EXTRA LARGE APERTURE
    KRAUSE, G
    APPLIED OPTICS, 1967, 6 (05): : 976 - &
  • [38] Structure and mechanical design for a large-aperture telescope
    Tan Yufeng
    Wang Jihong
    Ren Ge
    Ren Xiaoli
    Xie Zongliang
    Dong Li
    FOURTH SEMINAR ON NOVEL OPTOELECTRONIC DETECTION TECHNOLOGY AND APPLICATION, 2018, 10697
  • [39] Large-aperture holographically corrected membrane telescope
    Andersen, GP
    Knize, RJ
    Palisoc, AL
    Cassapakis, C
    OPTICAL ENGINEERING, 2002, 41 (07) : 1603 - 1607
  • [40] Application of Dielectric Films in Large Aperture Telescope Mirrors
    Tian Jie
    Wang Jinfeng
    Li Xinnan
    Wang Jun
    Zong Weijie
    ADVANCES IN OPTICAL AND MECHANICAL TECHNOLOGIES FOR TELESCOPES AND INSTRUMENTATION VI, 2024, 13100