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Large Ultraviolet Optical Infrared Surveyor

The Large Ultraviolet Optical Infrared Surveyor, commonly known as LUVOIR (/lˈvwɑːr/), is a multi-wavelength space telescope concept being developed by NASA under the leadership of a Science and Technology Definition Team. It is one of four large astrophysics space mission concepts studied in preparation for the National Academy of Sciences 2020 Astronomy and Astrophysics Decadal Survey.[2][3]

Large Ultraviolet Optical Infrared Surveyor
Rendering of the LUVOIR-A observatory concept
Mission typeSpace telescope
OperatorNASA
Websitewww.luvoirtelescope.org
Mission duration5 years (prime mission) (proposed)
10 years consumables
25 years lifetime goal for non-serviceable components
Start of mission
Launch date2039 (proposed)
RocketSLS Block 2 (proposed),
SpaceX Starship (proposed)
Orbital parameters
Reference systemSun-Earth L2
Main
TypeMulti-wavelength space telescope
Diameter8 or 15.1 m (26 or 50 ft)[1]
WavelengthsUV, visible and infrared
Instruments
Instruments
ECLIPSExtreme Coronagraph for LIving Planetary Systems
HDIHigh-Definition Imager
LUMOSLUVOIR Ultraviolet Multi-Object Spectrograph
POLLUXHigh-resolution UV spectropolarimeter (CNES)

Mission proposal insignia  

While LUVOIR is a concept for a general-purpose observatory, it has the key science goal of characterizing a wide range of exoplanets, including those that might be habitable. An additional goal is to enable a broad range of astrophysics, from the reionization epoch, through galaxy formation and evolution, to star and planet formation. Powerful imaging and spectroscopy observations of Solar System bodies would also be possible.

LUVOIR would be a Large Strategic Science Mission and was considered for a development start sometime in the 2020s. The LUVOIR Study Team, under Study Scientist Aki Roberge, has produced designs for two variants of LUVOIR: one with a 15.1 m diameter telescope mirror (LUVOIR-A) and one with an 8 m diameter mirror (LUVOIR-B).[4] LUVOIR would be able to observe ultraviolet, visible, and near-infrared wavelengths of light. The Final Report on the 5-year LUVOIR mission concept study was publicly released on 26 August 2019.[5]

On 4 November 2021, the 2020 Astrophysics Decadal Survey recommended development of a "large (~6 m aperture) infrared/optical/ultraviolet (IR/O/UV) space telescope", with the science goals of searching for signatures of life on planets outside of the solar system and enabling a wide range of transformative astrophysics. Such a mission draws upon both the LUVOIR and HabEx mission concepts.[6][7][8]

Background edit

In 2016, NASA began considering four different space telescope concepts for future Large Strategic Science Missions.[9] They are the Habitable Exoplanet Imaging Mission (HabEx), Large Ultraviolet Optical Infrared Surveyor (LUVOIR), Lynx X-ray Observatory (lynx), and Origins Space Telescope (OST). In 2019, the four teams turned in their final reports to the National Academy of Sciences, whose independent Decadal survey committee advises NASA on which mission should take top priority. If funded, LUVOIR would launch in approximately 2039 using a heavy launch vehicle, and it would be placed in an orbit around the Sun–Earth Lagrange point 2.[5]

Mission edit

 
Comparison of LUVOIR and other NASA proposed space telescopes (Lynx, HabEx and Origins)

LUVOIR's main goals are to investigate exoplanets, cosmic origins, and the Solar System.[4] LUVOIR would be able to analyze the structure and composition of exoplanet atmospheres and surfaces. It could also detect biosignatures arising from life in the atmosphere of a distant exoplanet.[10] Atmospheric biosignatures of interest include CO
2
, CO, molecular oxygen (O
2
), ozone (O
3
), water (H
2
O
), and methane (CH
4
). LUVOIR's multi-wavelength capability would also provide key information to help understand how a host star's UV radiation regulates the atmospheric photochemistry on habitable planets. LUVOIR will also observe large numbers of exoplanets spanning a wide range of characteristics (mass, host star type, age, etc.), with the goal of placing the Solar System in a broader context of planetary systems. Over its five-year primary mission, LUVOIR-A is expected to identify and study 54 potentially habitable exoplanets, while LUVOIR-B is expected to identify 28.[1]

The scope of astrophysics investigations include explorations of cosmic structure in the far reaches of space and time, formation and evolution of galaxies, and the birth of stars and planetary systems.

In the area of Solar System studies, LUVOIR can provide up to about 25 km imaging resolution in visible light at Jupiter, permitting detailed monitoring of atmospheric dynamics in Jupiter, Saturn, Uranus, and Neptune over long timescales. Sensitive, high resolution imaging and spectroscopy of Solar System comets, asteroids, moons, and Kuiper Belt objects that will not be visited by spacecraft in the foreseeable future can provide vital information on the processes that formed the Solar System ages ago. Furthermore, LUVOIR has an important role to play by studying plumes from the ocean moons of the outer Solar System, in particular Europa and Enceladus, over long timescales.

Design edit

 
A direct, to-scale, comparison between the primary mirrors of the Hubble Space Telescope, James Webb Space Telescope, LUVOIR-B and LUVOIR-A.

LUVOIR would be equipped with an internal coronagraph instrument, called ECLIPS for Extreme Coronagraph for LIving Planetary Systems, to enable direct observations of Earth-like exoplanets. An external starshade is also an option for the smaller LUVOIR design (LUVOIR-B).

Other candidate science instruments studied are: High-Definition Imager (HDI), a wide-field near-UV, optical, and near-infrared camera; LUMOS, a LUVOIR Ultraviolet Multi-Object Spectrograph; and POLLUX, an ultraviolet spectropolarimeter. POLLUX (high-resolution UV spectropolarimeter) is being studied by a European consortium, with leadership and support from the CNES, France.

The observatory can observe wavelengths of light from the far-ultraviolet to the near-infrared. To enable the extreme wavefront stability needed for coronagraphic observations of Earth-like exoplanets,[11] the LUVOIR design incorporates three principles. First, vibrations and mechanical disturbances throughout the observatory are minimized. Second, the telescope and coronagraph both incorporate several layers of wavefront control through active optics. Third, the telescope is actively heated to a precise 270 K (−3 °C; 26 °F) to control thermal disturbances. The LUVOIR technology development plan is supported with funding from NASA's Astrophysics Strategic Mission Concept Studies program, the Goddard Space Flight Center, the Marshall Space Flight Center, the Jet Propulsion Laboratory and related programs at Northrop Grumman Aerospace Systems and Ball Aerospace.

LUVOIR-A edit

LUVOIR-A, previously known as the High Definition Space Telescope (HDST), was proposed by the Association of Universities for Research in Astronomy (AURA) on 6 July 2015.[12] It would be composed of 36 mirror segments with an aperture of 15.1 metres (50 ft) in diameter, offering images up to 24 times sharper than the Hubble Space Telescope.[13] LUVOIR-A would be large enough to find and study the dozens of Earthlike planets in our nearby neighborhood. It could resolve objects such as the nucleus of a small galaxy or a gas cloud on the way to collapsing into a star and planets.[12]

The case for HDST was made in a report entitled "From Cosmic Birth to Living Earths", on the future of astronomy commissioned by AURA, which runs the Hubble and other observatories on behalf of NASA and the National Science Foundation.[14] Ideas for the original HDST proposal included an internal coronagraph, a disk that blocks light from the central star, making a dim planet more visible, and a starshade that would float kilometers out in front of it to perform the same function.[15] LUVOIR-A folds so it only needs an 8-metre wide payload fairing.[5] Initial cost estimates are approximately US$10 billion,[15] with lifetime cost estimates of $18 billion to $24 billion.[1]

LUVOIR-B edit

LUVOIR-B, previously known as the Advanced Technology Large-Aperture Space Telescope (ATLAST),[16][17][18][19] is an 8 meter architecture initially developed by the Space Telescope Science Institute,[20] the science operations center for the Hubble Space Telescope (HST) and the James Webb Space Telescope (JWST). While smaller than LUVOIR-A, it is being designed to produce an angular resolution that is 5–10 times better than the JWST, and a sensitivity limit that is up to 2,000 times better than HST.[16][17][20] The LUVOIR Study Team expects that the telescope would be able to be serviced – similar to HST – either by an uncrewed spacecraft or by astronauts via Orion or Starship. Instruments such as cameras could potentially be replaced and returned to Earth for analysis of their components and future upgrades.[19]

The original backronym used for the initial mission concept, "ATLAST", was a pun referring to the time taken to decide on a successor for HST. ATLAST itself had three different proposed architectures – an 8 metres (26 ft) monolithic mirror telescope, a 16.8 metres (55 ft) segmented mirror telescope, and a 9.2 metres (30 ft) segmented mirror telescope. The current LUVOIR-B architecture adopts JWST design heritage, essentially being an incrementally larger variant of the JWST, which has a 6.5 m segmented main mirror. Running on solar power, it would use an internal coronagraph or an external occulter which can characterize the atmosphere and surface of an Earth-sized exoplanet in the habitable zone of long-lived stars at distances up to 140 light-years (43 pc), including its rotation rate, climate, and habitability. The telescope would also allow researchers to glean information on the nature of the dominant surface features, changes in cloud cover and climate, and, potentially, seasonal variations in surface vegetation.[21] LUVOIR-B was designed to launch on a heavy-lift rocket with an industry-standard 5 metres (16 ft) diameter launch fairing. Lifetime cost estimates range from $12 billion to $18 billion.[1]

See also edit

References edit

  1. ^ a b c d Kaufman, Marc (23 March 2021). "The Space Telescope That Could Find a Second Earth". Air & Space Magazine. Retrieved 24 May 2021.
  2. ^ Foust, Jeff (21 January 2019). "Selecting the next great space observatory". The Space Review. Retrieved 20 September 2020.
  3. ^ "Decadal Survey on Astronomy and Astrophysics 2020 (Astro2020)". National Academies of Sciences, Engineering, and Medicine. 23 March 2021. Retrieved 24 May 2021.
  4. ^ a b Myers, J. D. "Official NASA website for LUVOIR". NASA.   This article incorporates text from this source, which is in the public domain.
  5. ^ a b c "LUVOIR Mission Concept Study Final Report". luvoirtelescope.org. NASA. 26 August 2019. Retrieved 24 May 2021.
  6. ^ Foust, Jeff (4 November 2021). "Astrophysics decadal survey recommends a program of flagship space telescopes". SpaceNews. Retrieved 12 April 2022.
  7. ^ Overbye, Dennis (4 November 2021). "A New 10-Year Plan for the Cosmos – On astronomers' wish list for the next decade: two giant telescopes and a space telescope to search for life and habitable worlds beyond Earth". The New York Times. Retrieved 12 April 2022.
  8. ^ Staff (4 November 2021). "New Report Charts Path for Next Decade of Astronomy and Astrophysics; Recommends Future Ground and Space – Telescopes, Scientific Priorities, Investments in Scientific Community". National Academies of Sciences, Engineering, and Medicine. Retrieved 12 April 2022.
  9. ^ Scoles, Sarah (30 March 2016). "NASA Considers Its Next Flagship Space Telescope". Scientific American. Retrieved 15 August 2017.
  10. ^ Trager, Rebecca (7 March 2018). "Searching for the chemistry of life on exoplanets". Chemistry World. Retrieved 24 May 2021.
  11. ^ "NASA Exoplanet Exploration Program Technology Overview".   This article incorporates text from this source, which is in the public domain.
  12. ^ a b . AURA. 6 July 2015. Archived from the original on 1 February 2017. Retrieved 24 July 2015.
  13. ^ Dickinson, David (21 July 2015). "High Definition Space Telescope – Hubble's Successor?". Sky & Telescope. Retrieved 24 July 2015.
  14. ^ "AURA Report". From Cosmic Birth to Living Earths. Retrieved 24 July 2015.
  15. ^ a b Overbye, Dennis (13 July 2015). "The Telescope of the 2030s". The New York Times. ISSN 0362-4331. Retrieved 24 July 2015.
  16. ^ a b "NASA Team Lays Plans to Observe New Worlds". NASA. 23 July 2014. Retrieved 5 December 2017.   This article incorporates text from this source, which is in the public domain.
  17. ^ a b Postman, Marc; et al. (6 April 2009). "Advanced Technology Large-Aperture Space Telescope (ATLAST): A Technology Roadmap for the Next Decade". RFI Submitted to Astro2010 Decadal Committee. arXiv:0904.0941. Bibcode:2009arXiv0904.0941P.
  18. ^ Reddy, Francis (August 2008). "Where will astronomy be in 35 years?". Astronomy.
  19. ^ a b "LUVOIR – Design". NASA. Retrieved 1 April 2020.   This article incorporates text from this source, which is in the public domain.
  20. ^ a b "ATLAST – Advanced Technology Large-Aperture Space Telescope". Space Telescope Science Institute. Retrieved 4 March 2023.
  21. ^ Postman, M.; Traub, W. A.; Krist, J.; et al. (19 November 2009). Advanced Technology Large-Aperture Space Telescope (ATLAST): Characterizing Habitable Worlds. Pathways Towards Habitable Planets Symposium. 14–18 September 2009. Barcelona, Spain. arXiv:0911.3841. Bibcode:2010ASPC..430..361P.

External links edit

  • Large Ultraviolet Optical Infrared Telescope project website
  • Large UV/Optical/IR Surveyor at the Goddard Space Flight Center
  • Advanced Technology Large-Aperture Space Telescope at the Goddard Space Flight Center
  • Advanced Technology Large-Aperture Space Telescope at STScI
  • at AURA

large, ultraviolet, optical, infrared, surveyor, commonly, known, luvoir, ɑːr, multi, wavelength, space, telescope, concept, being, developed, nasa, under, leadership, science, technology, definition, team, four, large, astrophysics, space, mission, concepts, . The Large Ultraviolet Optical Infrared Surveyor commonly known as LUVOIR l uː ˈ v w ɑːr is a multi wavelength space telescope concept being developed by NASA under the leadership of a Science and Technology Definition Team It is one of four large astrophysics space mission concepts studied in preparation for the National Academy of Sciences 2020 Astronomy and Astrophysics Decadal Survey 2 3 Large Ultraviolet Optical Infrared SurveyorRendering of the LUVOIR A observatory conceptMission typeSpace telescopeOperatorNASAWebsitewww wbr luvoirtelescope wbr orgMission duration5 years prime mission proposed 10 years consumables25 years lifetime goal for non serviceable componentsStart of missionLaunch date2039 proposed RocketSLS Block 2 proposed SpaceX Starship proposed Orbital parametersReference systemSun Earth L2MainTypeMulti wavelength space telescopeDiameter8 or 15 1 m 26 or 50 ft 1 WavelengthsUV visible and infraredInstrumentsInstrumentsECLIPSExtreme Coronagraph for LIving Planetary SystemsHDIHigh Definition ImagerLUMOSLUVOIR Ultraviolet Multi Object SpectrographPOLLUXHigh resolution UV spectropolarimeter CNES Mission proposal insignia While LUVOIR is a concept for a general purpose observatory it has the key science goal of characterizing a wide range of exoplanets including those that might be habitable An additional goal is to enable a broad range of astrophysics from the reionization epoch through galaxy formation and evolution to star and planet formation Powerful imaging and spectroscopy observations of Solar System bodies would also be possible LUVOIR would be a Large Strategic Science Mission and was considered for a development start sometime in the 2020s The LUVOIR Study Team under Study Scientist Aki Roberge has produced designs for two variants of LUVOIR one with a 15 1 m diameter telescope mirror LUVOIR A and one with an 8 m diameter mirror LUVOIR B 4 LUVOIR would be able to observe ultraviolet visible and near infrared wavelengths of light The Final Report on the 5 year LUVOIR mission concept study was publicly released on 26 August 2019 5 On 4 November 2021 the 2020 Astrophysics Decadal Survey recommended development of a large 6 m aperture infrared optical ultraviolet IR O UV space telescope with the science goals of searching for signatures of life on planets outside of the solar system and enabling a wide range of transformative astrophysics Such a mission draws upon both the LUVOIR and HabEx mission concepts 6 7 8 Contents 1 Background 2 Mission 3 Design 3 1 LUVOIR A 3 2 LUVOIR B 4 See also 5 References 6 External linksBackground editSee also Large strategic science missions In 2016 NASA began considering four different space telescope concepts for future Large Strategic Science Missions 9 They are the Habitable Exoplanet Imaging Mission HabEx Large Ultraviolet Optical Infrared Surveyor LUVOIR Lynx X ray Observatory lynx and Origins Space Telescope OST In 2019 the four teams turned in their final reports to the National Academy of Sciences whose independent Decadal survey committee advises NASA on which mission should take top priority If funded LUVOIR would launch in approximately 2039 using a heavy launch vehicle and it would be placed in an orbit around the Sun Earth Lagrange point 2 5 Mission edit nbsp Comparison of LUVOIR and other NASA proposed space telescopes Lynx HabEx and Origins LUVOIR s main goals are to investigate exoplanets cosmic origins and the Solar System 4 LUVOIR would be able to analyze the structure and composition of exoplanet atmospheres and surfaces It could also detect biosignatures arising from life in the atmosphere of a distant exoplanet 10 Atmospheric biosignatures of interest include CO2 CO molecular oxygen O2 ozone O3 water H2 O and methane CH4 LUVOIR s multi wavelength capability would also provide key information to help understand how a host star s UV radiation regulates the atmospheric photochemistry on habitable planets LUVOIR will also observe large numbers of exoplanets spanning a wide range of characteristics mass host star type age etc with the goal of placing the Solar System in a broader context of planetary systems Over its five year primary mission LUVOIR A is expected to identify and study 54 potentially habitable exoplanets while LUVOIR B is expected to identify 28 1 The scope of astrophysics investigations include explorations of cosmic structure in the far reaches of space and time formation and evolution of galaxies and the birth of stars and planetary systems In the area of Solar System studies LUVOIR can provide up to about 25 km imaging resolution in visible light at Jupiter permitting detailed monitoring of atmospheric dynamics in Jupiter Saturn Uranus and Neptune over long timescales Sensitive high resolution imaging and spectroscopy of Solar System comets asteroids moons and Kuiper Belt objects that will not be visited by spacecraft in the foreseeable future can provide vital information on the processes that formed the Solar System ages ago Furthermore LUVOIR has an important role to play by studying plumes from the ocean moons of the outer Solar System in particular Europa and Enceladus over long timescales Design edit nbsp A direct to scale comparison between the primary mirrors of the Hubble Space Telescope James Webb Space Telescope LUVOIR B and LUVOIR A LUVOIR would be equipped with an internal coronagraph instrument called ECLIPS for Extreme Coronagraph for LIving Planetary Systems to enable direct observations of Earth like exoplanets An external starshade is also an option for the smaller LUVOIR design LUVOIR B Other candidate science instruments studied are High Definition Imager HDI a wide field near UV optical and near infrared camera LUMOS a LUVOIR Ultraviolet Multi Object Spectrograph and POLLUX an ultraviolet spectropolarimeter POLLUX high resolution UV spectropolarimeter is being studied by a European consortium with leadership and support from the CNES France The observatory can observe wavelengths of light from the far ultraviolet to the near infrared To enable the extreme wavefront stability needed for coronagraphic observations of Earth like exoplanets 11 the LUVOIR design incorporates three principles First vibrations and mechanical disturbances throughout the observatory are minimized Second the telescope and coronagraph both incorporate several layers of wavefront control through active optics Third the telescope is actively heated to a precise 270 K 3 C 26 F to control thermal disturbances The LUVOIR technology development plan is supported with funding from NASA s Astrophysics Strategic Mission Concept Studies program the Goddard Space Flight Center the Marshall Space Flight Center the Jet Propulsion Laboratory and related programs at Northrop Grumman Aerospace Systems and Ball Aerospace LUVOIR A edit LUVOIR A previously known as the High Definition Space Telescope HDST was proposed by the Association of Universities for Research in Astronomy AURA on 6 July 2015 12 It would be composed of 36 mirror segments with an aperture of 15 1 metres 50 ft in diameter offering images up to 24 times sharper than the Hubble Space Telescope 13 LUVOIR A would be large enough to find and study the dozens of Earthlike planets in our nearby neighborhood It could resolve objects such as the nucleus of a small galaxy or a gas cloud on the way to collapsing into a star and planets 12 The case for HDST was made in a report entitled From Cosmic Birth to Living Earths on the future of astronomy commissioned by AURA which runs the Hubble and other observatories on behalf of NASA and the National Science Foundation 14 Ideas for the original HDST proposal included an internal coronagraph a disk that blocks light from the central star making a dim planet more visible and a starshade that would float kilometers out in front of it to perform the same function 15 LUVOIR A folds so it only needs an 8 metre wide payload fairing 5 Initial cost estimates are approximately US 10 billion 15 with lifetime cost estimates of 18 billion to 24 billion 1 LUVOIR B edit LUVOIR B previously known as the Advanced Technology Large Aperture Space Telescope ATLAST 16 17 18 19 is an 8 meter architecture initially developed by the Space Telescope Science Institute 20 the science operations center for the Hubble Space Telescope HST and the James Webb Space Telescope JWST While smaller than LUVOIR A it is being designed to produce an angular resolution that is 5 10 times better than the JWST and a sensitivity limit that is up to 2 000 times better than HST 16 17 20 The LUVOIR Study Team expects that the telescope would be able to be serviced similar to HST either by an uncrewed spacecraft or by astronauts via Orion or Starship Instruments such as cameras could potentially be replaced and returned to Earth for analysis of their components and future upgrades 19 The original backronym used for the initial mission concept ATLAST was a pun referring to the time taken to decide on a successor for HST ATLAST itself had three different proposed architectures an 8 metres 26 ft monolithic mirror telescope a 16 8 metres 55 ft segmented mirror telescope and a 9 2 metres 30 ft segmented mirror telescope The current LUVOIR B architecture adopts JWST design heritage essentially being an incrementally larger variant of the JWST which has a 6 5 m segmented main mirror Running on solar power it would use an internal coronagraph or an external occulter which can characterize the atmosphere and surface of an Earth sized exoplanet in the habitable zone of long lived stars at distances up to 140 light years 43 pc including its rotation rate climate and habitability The telescope would also allow researchers to glean information on the nature of the dominant surface features changes in cloud cover and climate and potentially seasonal variations in surface vegetation 21 LUVOIR B was designed to launch on a heavy lift rocket with an industry standard 5 metres 16 ft diameter launch fairing Lifetime cost estimates range from 12 billion to 18 billion 1 See also edit nbsp Spaceflight portal nbsp Astronomy portal List of proposed space observatoriesReferences edit a b c d Kaufman Marc 23 March 2021 The Space Telescope That Could Find a Second Earth Air amp Space Magazine Retrieved 24 May 2021 Foust Jeff 21 January 2019 Selecting the next great space observatory The Space Review Retrieved 20 September 2020 Decadal Survey on Astronomy and Astrophysics 2020 Astro2020 National Academies of Sciences Engineering and Medicine 23 March 2021 Retrieved 24 May 2021 a b Myers J D Official NASA website for LUVOIR NASA nbsp This article incorporates text from this source which is in the public domain a b c LUVOIR Mission Concept Study Final Report luvoirtelescope org NASA 26 August 2019 Retrieved 24 May 2021 Foust Jeff 4 November 2021 Astrophysics decadal survey recommends a program of flagship space telescopes SpaceNews Retrieved 12 April 2022 Overbye Dennis 4 November 2021 A New 10 Year Plan for the Cosmos On astronomers wish list for the next decade two giant telescopes and a space telescope to search for life and habitable worlds beyond Earth The New York Times Retrieved 12 April 2022 Staff 4 November 2021 New Report Charts Path for Next Decade of Astronomy and Astrophysics Recommends Future Ground and Space Telescopes Scientific Priorities Investments in Scientific Community National Academies of Sciences Engineering and Medicine Retrieved 12 April 2022 Scoles Sarah 30 March 2016 NASA Considers Its Next Flagship Space Telescope Scientific American Retrieved 15 August 2017 Trager Rebecca 7 March 2018 Searching for the chemistry of life on exoplanets Chemistry World Retrieved 24 May 2021 NASA Exoplanet Exploration Program Technology Overview nbsp This article incorporates text from this source which is in the public domain a b AURA Releases Study of Future Space Telescope AURA 6 July 2015 Archived from the original on 1 February 2017 Retrieved 24 July 2015 Dickinson David 21 July 2015 High Definition Space Telescope Hubble s Successor Sky amp Telescope Retrieved 24 July 2015 AURA Report From Cosmic Birth to Living Earths Retrieved 24 July 2015 a b Overbye Dennis 13 July 2015 The Telescope of the 2030s The New York Times ISSN 0362 4331 Retrieved 24 July 2015 a b NASA Team Lays Plans to Observe New Worlds NASA 23 July 2014 Retrieved 5 December 2017 nbsp This article incorporates text from this source which is in the public domain a b Postman Marc et al 6 April 2009 Advanced Technology Large Aperture Space Telescope ATLAST A Technology Roadmap for the Next Decade RFI Submitted to Astro2010 Decadal Committee arXiv 0904 0941 Bibcode 2009arXiv0904 0941P Reddy Francis August 2008 Where will astronomy be in 35 years Astronomy a b LUVOIR Design NASA Retrieved 1 April 2020 nbsp This article incorporates text from this source which is in the public domain a b ATLAST Advanced Technology Large Aperture Space Telescope Space Telescope Science Institute Retrieved 4 March 2023 Postman M Traub W A Krist J et al 19 November 2009 Advanced Technology Large Aperture Space Telescope ATLAST Characterizing Habitable Worlds Pathways Towards Habitable Planets Symposium 14 18 September 2009 Barcelona Spain arXiv 0911 3841 Bibcode 2010ASPC 430 361P External links edit nbsp Wikimedia Commons has media related to wbr LUVOIR and wbr High Definition Space Telescope Large Ultraviolet Optical Infrared Telescope project website Large UV Optical IR Surveyor at the Goddard Space Flight Center Advanced Technology Large Aperture Space Telescope at the Goddard Space Flight Center Advanced Technology Large Aperture Space Telescope at STScI High Definition Space Telescope at AURA Retrieved from https en wikipedia org w index php title Large Ultraviolet Optical Infrared Surveyor amp oldid 1179245101, wikipedia, wiki, book, books, library,

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