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List of space telescopes

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The Hubble Space Telescope
Comparison between many space telescopes by diameter
Overview of active and future telescopes (as of January 2021)

This list of space telescopes (astronomical space observatories) is grouped by major frequency ranges: gamma ray, x-ray, ultraviolet, visible, infrared, microwave, and radio. Telescopes that work in multiple frequency bands are included in all of the appropriate sections. Space telescopes that collect particles, such as cosmic ray nuclei and/or electrons, as well as instruments that aim to detect gravitational waves, are also listed. Missions with specific targets within the Solar System (e.g., the Sun and its planets), are excluded; see List of Solar System probes for these, and List of Earth observation satellites for missions targeting Earth.

Two values are provided for the dimensions of the initial orbit. For telescopes in Earth orbit, the minimum and maximum altitude are given in kilometers. For telescopes in solar orbit, the minimum distance (periapsis) and the maximum distance (apoapsis) between the telescope and the center of mass of the Sun are given in astronomical units (AU).

Gamma ray

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Gamma-ray telescopes collect and measure individual, high energy gamma rays from astrophysical sources. These are absorbed by the atmosphere, requiring that observations are done by high-altitude balloons or space missions. Gamma rays can be generated by supernovae, neutron stars, pulsars and black holes. Gamma ray bursts, with extremely high energies, have also been detected but have yet to be identified.[1]

X-ray

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X-ray telescopes measure high-energy photons called X-rays. These can not travel a long distance through the atmosphere, meaning that they can only be observed high in the atmosphere or in space. Several types of astrophysical objects emit X-rays, from galaxy clusters, through black holes in active galactic nuclei to galactic objects such as supernova remnants, stars, and binary stars containing a white dwarf (cataclysmic variable stars), neutron star or black hole (X-ray binaries). Some Solar System bodies emit X-rays, the most notable being the Moon, although most of the X-ray brightness of the Moon arises from reflected solar X-rays. A combination of many unresolved X-ray sources is thought to produce the observed X-ray background.

Ultraviolet

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Ultraviolet telescopes make observations at ultraviolet wavelengths, i.e. between approximately 10 and 320 nm. Light at these wavelengths is absorbed by the Earth's atmosphere, so observations at these wavelengths must be performed from the upper atmosphere or from space.[118] Objects emitting ultraviolet radiation include the Sun, other stars and galaxies.[119]

UV ranges listed at Ultraviolet astronomy#Ultraviolet space telescopes.

Visible light

[edit]

The oldest form of astronomy, optical or visible-light astronomy, observes wavelengths of light from approximately 400 to 700 nm.[149] Positioning an optical telescope in space eliminates the distortions and limitations that hamper that ground-based optical telescopes (see Astronomical seeing), providing higher resolution images. Optical telescopes are used to look at planets, stars, galaxies, planetary nebulae and protoplanetary disks, amongst many other things.[150]

Infrared and submillimetre

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Infrared light is of lower energy than visible light, hence is emitted by sources that are either cooler, or moving away from the observer (in present context: Earth) at high speed. As such, the following can be viewed in the infrared: cool stars (including brown dwarves), nebulae, and redshifted galaxies.[169]

Microwave

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Microwave space telescopes have primarily been used to measure cosmological parameters from the Cosmic Microwave Background. They also measure synchrotron radiation, free-free emission and spinning dust from the Milky Way Galaxy, as well as extragalactic compact sources and galaxy clusters through the Sunyaev-Zel'dovich effect.[199]

Photo Name Space agency Launch date Terminated Location Ref(s)
Cosmic Background Explorer (COBE) NASA 18 Nov 1989 23 Dec 1993 Earth orbit (900 km) [200][201]
Odin Swedish Space Corporation 20 Feb 2001 Earth orbit (622 km) [202][203]
WMAP NASA 30 Jun 2001 Oct 2010 Sun-Earth L2 Lagrange point [204]
Planck ESA 14 May 2009 Oct 2013 Sun-Earth L2 Lagrange point (mission)
Heliocentric (Derelict)
[191][205][206]

Radio

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As the atmosphere is transparent for radio waves, radio telescopes in space are most useful for Very Long Baseline Interferometry: doing simultaneous observations of a source with both a satellite and a ground-based telescope and by correlating their signals to simulate a radio telescope the size of the separation between the two telescopes. Typical targets for observations include supernova remnants, masers, gravitational lenses, and starburst galaxies.[citation needed]

Photo Name Space agency Launch date Terminated Location Ref(s)
Highly Advanced Laboratory for Communications and Astronomy (HALCA, VSOP or MUSES-B) ISAS 12 Feb 1997 30 Nov 2005 Earth orbit (560–21,400 km) [207][208][209]
Spektr-R (RadioAstron) ASC LPI 18 Jul 2011 11 Jan 2019 Earth orbit (10,000–390,000 km) [210][211][212]

Particle detection

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Spacecraft and space-based modules that do particle detection, looking for cosmic rays and electrons. These can be emitted by the Sun (Solar Energetic Particles), the Milky Way galaxy (Galactic cosmic rays) and extragalactic sources (Extragalactic cosmic rays). There are also Ultra-high-energy cosmic rays from active galactic nuclei, those can be detected by ground-based detectors via their particle showers.

Gravitational waves

[edit]

A type of telescope that detects gravitational waves; ripples in space-time generated by colliding neutron stars or black holes.

To be launched

[edit]
Photo Name Space agency Planned launch date Location Ref(s)
SPHEREx NASA 2025 Earth orbit [222]
Xuntian CNSA/CAS 2026 Low Earth orbit [223][224][225]
PLATO ESA 2026 Geosynchronous orbit [226]
ULTRASAT Israel Space Agency 2026 Sun–Earth L2 Lagrange point [227]
Nancy Grace Roman Space Telescope NASA 2027 Sun–Earth L2 Lagrange point [228]
Compton Spectrometer and Imager NASA 2027 Low Earth orbit [229]
ARIEL ESA 2029 Sun–Earth L2 Lagrange point [230]
UVEX NASA 2030 Highly elliptical orbit [231]
Taiji CNSA/CAS 2033 Heliocentric orbit [232]
Advanced Telescope for High Energy Astrophysics (Athena) ESA/NASA/JAXA 2035 Sun–Earth L2 Lagrange point [233]
Laser Interferometer Space Antenna (LISA) ESA 2037 Heliocentric orbit [234]

See also

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