Extragalactic background light
──────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────
top
The diffuse extragalactic background light (EBL) is all the accumulated radiation in the universe due to star formation processes, plus a contribution from active galactic nuclei (AGNs).cite-ref-nyt-20181203-1-0[1] This radiation covers almost all wavelengths of the electromagnetic spectrum, except the microwave, which is dominated by the primordial cosmic microwave background. The EBL is part of the diffuse extragalactic background radiation (DEBRA), which by definition covers the entire electromagnetic spectrum. After the cosmic microwave background, the EBL produces the second-most energetic diffuse background, thus being essential for understanding the full energy balance of the universe.
The understanding of the EBL is also fundamental for extragalactic very-high-energy (VHE, 30 GeV-30 TeV) astronomy.cite-ref-2[2] VHE photons coming from cosmological distances are attenuated by pair production with EBL photons. This interaction is dependent on the spectral energy distribution (SED) of the EBL. Therefore, it is necessary to know the SED of the EBL in order to study intrinsic properties of the emission in the VHE sources.
Contents
• See also
──────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────────
Observations
The direct measurement of the EBL is difficult mainly due to the contribution of zodiacal light that is orders of magnitude higher than the EBL. Different groups have claimed the detection of the EBL in the opticalcite-ref-3[3] and near-infrared.cite-ref-4[4]cite-ref-5[5] However, it has been proposed that these analyses have been contaminated by zodiacal light.cite-ref-6[6] Recently, two independent groups using different technique have claimed the detection of the EBL in the optical with no contamination from zodiacal light.cite-ref-7[7]cite-ref-8[8]cite-ref-9[9]
Empirical modelings
There are empirical approaches that predict the overall SED of the EBL in the local universe as well as its evolution over time. These types of modeling can be divided in four different categories according to:cite-ref-dom-nguez-2011-16-0[16]
(iv) Evolution of the galaxy populations that is directly observed over the range of redshifts that contribute significantly to the EBL.cite-ref-dom-nguez-2011-16-1[16]
See also
References
cite-note-nyt-20181203-11. ↑ citerefoverbye2018Overbye, Dennis (3 December 2018). "All the Light There Is to See? 4 x 1084 Photons". The New York Times. Retrieved 4 December 2018.
cite-note-22. ↑ Aharonian, F. A., Very high energy cosmic gamma radiation: a crucial window on the extreme universe, River Edge, New Jersey: World Scientific Publishing, 2004
cite-note-33. ↑ Bernstein, R. A., 2007, ApJ, 666, 663
cite-note-44. ↑ Cambrésy, L.; Reach, W. T.; Beichman, C. A.; Jarrett, T. H., 2001, ApJ, 555, 563.
cite-note-55. ↑ Matsumoto T., et al., 2005, ApJ, 626, 31
cite-note-66. ↑ Mattila, K., 2006, MNRAS, 372, 1253
cite-note-77. ↑ Matsuoka, Y.; Ienaka, N.; Kawara, K.; Oyabu, S.; 2011, ApJ, 736, 119
cite-note-88. ↑ Mattila, K.; Lehtinen, K.; Vaisanen, P.; von Appen-Schnur, G.; Leinert, C., 2011, Proceedings of the IAU 284 Symposium SED, arXiv:1111.6747
cite-note-1010. ↑ Madau, P.; Pozzetti, L., 2000, MNRAS, 312, L9
cite-note-1111. ↑ Keenan, R. C.; Barger, A. J.; Cowie, L. L.; Wang, W. H., 2010, ApJ, 723, 40
cite-note-1212. ↑ Aharonian, F., et al., 2006, Nature, 440, 1018
cite-note-1313. ↑ Mazin, D.; Raue, M., 2007, A&A, 471, 439
cite-note-1414. ↑ Albert, J., et al., 2008, Science, 320, 1752
cite-note-sci-20181130-1515. ↑ citerefthe-fermi-lat-collaboration2018The Fermi-LAT Collaboration (30 November 2018). "A gamma-ray determination of the Universe's star formation history". Science. 362 (6418): 1031–1034. arXiv:1812.01031. Bibcode:2018Sci...362.1031F. doi:10.1126/science.aat8123. PMID 30498122.
cite-note-dom-nguez-2011-1616. ↑ Domínguez et al. 2011, MNRAS, 410, 2556
cite-note-1717. ↑ Primack, J. R.; Bullock, J. S.; Somerville, R. S.; MacMinn, D., 1999, APh, 11, 93
cite-note-1818. ↑ Somerville, R. S.; Gilmore, R. C.; Primack, J. R.; Domínguez, A., 2012, arXiv:1104.0669
cite-note-1919. ↑ Gilmore, R. C.; Somerville, R. S.; Primack, J. R.; Domínguez, A., 2012, arXiv:1104.0671
cite-note-2020. ↑ Malkan, M. A.; Stecker, F. W., 1998, ApJ, 496, 13
cite-note-2121. ↑ Stecker ,F. W.; Malkan, M. A.; Scully, S. T., 2006, ApJ, 648, 774
cite-note-2222. ↑ Franceschini, A.; Rodighiero, G.; Vaccari, M., 2008, A&A, 487, 837
cite-note-2323. ↑ Kneiske, T. M.; Mannheim, K.; Hartmann, D. H., 2002, A&A, 386, 1
cite-note-2424. ↑ Finke, J. D.; Razzaque, S.; Dermer, C. D., 2010, ApJ, 712, 238
cite-note-2525. ↑ Kneiske, T.~M.; Dole, H., 2010, A&A, 515, A19
cite-note-2626. ↑ Khaire, V.; Srianand, R., 2014, ApJ, 805, 33 (arXiv:1405.7038)