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| | The idea arose when astronomers found that the mass of large astronomical objects, and their [[gravitational]] effects, was much greater than the mass from the "luminous matter" that contains [[stars]], [[gas]], and [[dust]]. | | The idea arose when astronomers found that the mass of large astronomical objects, and their [[gravitational]] effects, was much greater than the mass from the "luminous matter" that contains [[stars]], [[gas]], and [[dust]]. |
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| − | Dark matter was first proposed by [[Jan Oort]] in 1932 as a reason for the spinning speeds of stars in the [[Milky Way]]. [[Fritz Zwicky]] in 1933 used dark matter to explain "missing mass" in the spinning speeds of [[galaxy|galaxies]] in [[galaxy cluster|clusters]]. Later, many other observations have suggested that there is dark matter in the universe. The spinning speeds of galaxies,<ref>[http://www.darkmatterphysics.com/Galactic-rotation-curves-of-spiral-galaxies.htm First observational evidence of dark matter] {{Webarchive|url=https://web.archive.org/web/20130625183052/http://www.darkmatterphysics.com/Galactic-rotation-curves-of-spiral-galaxies.htm |date=2013-06-25 }}. Darkmatterphysics.com. Retrieved on 6 August 2013.</ref> [[gravitational lensing]] of background objects, the temperature distribution of hot gas in galaxies and clusters of galaxies: these are some of the examples that make scientists believe in dark matter. | + | Dark matter was first proposed by [[Jan Oort]] in 1932 as a reason for the spinning speeds of stars in the [[Milky Way]]. [[Fritz Zwicky]] in 1933 used dark matter to explain "missing mass" in the spinning speeds of [[galaxy|galaxies]] in [[galaxy cluster|clusters]]. Later, many other observations have suggested that there is dark matter in the universe. The spinning speeds of galaxies,<ref>http://www.darkmatterphysics.com/Galactic-rotation-curves-of-spiral-galaxies.htm First observational evidence of dark matter </ref> [[gravitational lensing]] of background objects, the temperature distribution of hot gas in galaxies and clusters of galaxies: these are some of the examples that make scientists believe in dark matter. |
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| − | According to the [[Planck (spacecraft)#2013 data release|Planck mission team]], and based on the [[standard model of cosmology]], the total [[Mass–energy equivalence|mass–energy]] of the [[observable universe|known universe]] contains 4.9% [[Baryon#Baryonic matter|ordinary matter]], 26.8% dark matter and 68.3% [https://www.astroamanessence.com/2020/11/dark-energy-and-dark-matter.html dark energy] {{Webarchive|url=https://web.archive.org/web/20201116211752/https://www.astroamanessence.com/2020/11/dark-energy-and-dark-matter.html |date=2020-11-16 }}.<ref name="planck_overview">{{cite journal |first1=P.A.R. |last1=Ade |first2=N. |last2=Aghanim |first3=C. |last3=Armitage-Caplan |last4=''et al''. (Planck Collaboration) |title=Planck 2013 results. I. Overview of products and scientific results – Table 9 |journal=Astronomy and Astrophysics |volume=1303 |pages=5062 |url=http://www.sciops.esa.int/index.php?project=PLANCK&page=Planck_Published_Papers |date=2013 |arxiv=1303.5062 |bibcode=2013arXiv1303.5062P |displayauthors=30 |access-date=2014-07-24 |archive-date=2016-08-13 |archive-url=https://web.archive.org/web/20160813220816/http://www.sciops.esa.int/index.php?project=PLANCK |url-status=dead }}</ref><ref name="wmap7parameters">{{cite web|title = First Planck results: the Universe is still weird and interesting|url =https://arstechnica.com/science/2013/03/first-planck-results-the-universe-is-still-weird-and-interesting/|author=Francis, Matthew |date= 2013|work=Arstechnica}}</ref> Thus, dark matter is estimated to make up 84.5% <!--26.8/(4.9 + 26.8)--> of the total matter in the universe, while dark energy plus dark matter make up 95.1% of the total "stuff" in the universe.<ref name=planckcam>{{cite web |url=http://www.cam.ac.uk/research/news/planck-captures-portrait-of-the-young-universe-revealing-earliest-light |title=Planck captures portrait of the young Universe, revealing earliest light |date= 2013 |publisher=University of Cambridge |accessdate=22 March 2013}}</ref><ref>Ferris, Timothy. 2015. Dark Matter. ''National Geographic''. [http://ngm.nationalgeographic.com/2015/01/hidden-cosmos/ferris-text]</ref> | + | According to the [[Planck (spacecraft)#2013 data release|Planck mission team]], and based on the [[standard model of cosmology]], the total [[Mass–energy equivalence|mass–energy]] of the [[observable universe|known universe]] contains 4.9% [[Baryon#Baryonic matter|ordinary matter]], 26.8% dark matter and 68.3% [[dark energy]].<ref>https://www.astroamanessence.com/2020/11/dark-energy-and-dark-matter.html {{Webarchive|url=https://web.archive.org/web/20201116211752/https://www.astroamanessence.com/2020/11/dark-energy-and-dark-matter.html |date=2020-11-16 }}</ref>Thus, dark matter is estimated to make up 84.5% <!--26.8/(4.9 + 26.8)--> of the total matter in the universe, while dark energy plus dark matter make up 95.1% of the total "stuff" in the universe.<ref name=planckcam>{{cite web |url=http://www.cam.ac.uk/research/news/planck-captures-portrait-of-the-young-universe-revealing-earliest-light |title=Planck captures portrait of the young Universe, revealing earliest light |date= 2013 |publisher=University of Cambridge |accessdate=22 March 2013}}</ref><ref>Ferris, Timothy. 2015. Dark Matter. ''National Geographic''. [http://ngm.nationalgeographic.com/2015/01/hidden-cosmos/ferris-text]</ref> |
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| | Because dark matter does not seem to give off or reflect [[light]], [[x-ray]]s, or any other [[electromagnetic radiation|radiation]], the instruments that are used to find normal matter (like hot gas, stars, planets, and us) can't find dark matter. It seems that dark matter is not made of the same thing as the matter we see every day on Earth. The only way we can tell if dark matter is there, is by how it affects things we can "see" by gravity. | | Because dark matter does not seem to give off or reflect [[light]], [[x-ray]]s, or any other [[electromagnetic radiation|radiation]], the instruments that are used to find normal matter (like hot gas, stars, planets, and us) can't find dark matter. It seems that dark matter is not made of the same thing as the matter we see every day on Earth. The only way we can tell if dark matter is there, is by how it affects things we can "see" by gravity. |
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| | In 2006, a group of scientists claimed that they had found a way to find dark matter.<ref>Amos, Jonathan 2006. Dark matter comes out of the cold. BBC News [http://news.bbc.co.uk/1/hi/sci/tech/4679220.stm].</ref><ref name="stanford">{{cite journal|title=Dark matter observed|url=http://home.slac.stanford.edu/pressreleases/2006/20060821.htm}}</ref> Since dark matter is supposedly very different from normal matter, it is expected to act differently. The scientists observed two far-away [[galaxy cluster]]s that had crashed into each other at high speed: normal matter would have been scattered nearby after the collision, while dark matter would not. By measuring gravity, they were able to detect what looked like two clouds of dark matter, with a cloud of normal matter (hot gas) in between them. | | In 2006, a group of scientists claimed that they had found a way to find dark matter.<ref>Amos, Jonathan 2006. Dark matter comes out of the cold. BBC News [http://news.bbc.co.uk/1/hi/sci/tech/4679220.stm].</ref><ref name="stanford">{{cite journal|title=Dark matter observed|url=http://home.slac.stanford.edu/pressreleases/2006/20060821.htm}}</ref> Since dark matter is supposedly very different from normal matter, it is expected to act differently. The scientists observed two far-away [[galaxy cluster]]s that had crashed into each other at high speed: normal matter would have been scattered nearby after the collision, while dark matter would not. By measuring gravity, they were able to detect what looked like two clouds of dark matter, with a cloud of normal matter (hot gas) in between them. |
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| | + | == Dark Matter Media == |
| | + | <gallery widths='160px' heights='100%' mode='traditional' caption=''> |
| | + | File: Artist’s impression of the expected dark matter distribution around the Milky Way.ogv|This artist's impression shows the expected distribution of dark matter in the [[Milky Way]] galaxy as a blue halo of material surrounding the galaxy. |
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| | + | File:GalacticRotation2.svg|[[Galaxy rotation curve|Rotation curve]] of a typical spiral galaxy: predicted ('''A''') and observed ('''B'''). Dark matter can explain the 'flat' appearance of the velocity curve out to a large radius. |
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| | + | File:Gravitationell-lins-4.jpg|Strong gravitational lensing as observed by the [[Hubble Space Telescope]] in [[Abell 1689]] indicates the presence of dark matter{{snd}}enlarge the image to see the lensing arcs. |
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| | + | File:Comparison of rotating disc galaxies in the distant Universe and the present day.webm|Models of rotating disc galaxies in the present day (left) and ten billion years ago (right). In the present-day galaxy, dark matter{{snd}}shown in red{{snd}}is more concentrated near the center and it rotates more rapidly (effect exaggerated). |
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| | + | File:Dark matter map of KiDS survey region (region G12).jpg|Dark matter map for a patch of sky based on gravitational lensing analysis of a Kilo-Degree survey. |
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| | + | File:COSMOS 3D dark matter map.png|3-D map of the large-scale distribution of dark matter, reconstructed from measurements of [[weak gravitational lensing]] with the [[Hubble Space Telescope]]. |
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| | + | File:Fermi Observations of Dwarf Galaxies Provide New Insights on Dark Matter.ogv|[[Fermi Gamma-ray Space Telescope|Fermi-LAT]] observations of dwarf galaxies provide new insights on dark matter. |
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| | + | File:Collage of six cluster collisions with dark matter maps.jpg|Collage of six cluster collisions with dark matter maps. The clusters were observed in a study of how dark matter in clusters of galaxies behaves when the clusters collide. |
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| | + | File:Turning Black Holes into Dark Matter Labs.webm|Video about the potential [[Gamma-ray astronomy|gamma-ray detection]] of dark matter [[annihilation]] around [[supermassive black hole]]s. ''(Duration 0:03:13, also see file description.)'' |
| | + | </gallery> |
| | == Related pages == | | == Related pages == |
| | * [[Dark energy]] | | * [[Dark energy]] |
| | * [[Expansion of the Universe]] | | * [[Expansion of the Universe]] |
| | * [[Template:Nature timeline|Nature timeline]] | | * [[Template:Nature timeline|Nature timeline]] |
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| |
| | == References == | | == References == |
| | {{reflist}} | | {{reflist}} |
| | + | |
| | + | {{States of matter}} |
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| | [[Category:Astrophysics]] | | [[Category:Astrophysics]] |
| − | [[Category:Galaxies]] | + | [[Category:Cosmology]] |
| | + | [[Category:Matter]] |