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      Age Aspects of Habitability

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          Abstract

          A habitable zone of a star is defined as a range of orbits within which a rocky planet can support liquid water on its surface. The most intriguing question driving the search for habitable planets is whether they host life. But is the age of the planet important for its habitability? If we define habitability as the ability of a planet to beget life, then probably not. After all, life on Earth has developed within only about 800 Myr after its formation. If, however, we define habitability as our ability to detect life on the surface of exoplanets, then age becomes a crucial parameter. Only after life had evolved sufficiently complex to change its environment on a planetary scale, can we detect it remotely through its imprint on the atmosphere - the biosignatures, out of which the photosynthetic oxygen is the most prominent indicator of developed life as we know it. But the onset of photosynthesis on planets in habitable zones may take much longer time than the planetary age. The knowledge of the age of a planet is necessary for developing a strategy to search for exoplanets carrying complex (developed) life - many confirmed potentially habitable planets are too young (orbiting Population I stars) and may not have had enough time to develop and/or sustain detectable life. In the last decade, many planets orbiting old (9-13 Gyr) metal-poor Population II stars have been discovered. Such planets had had enough time to develop necessary chains of chemical reactions and may carry detectable life if located in a habitable zone. These old planets should be primary targets in search for the extraterrestrial life.

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          Author and article information

          Journal
          2014-04-02
          2016-03-23
          Article
          10.1017/S1473550415000208
          1404.0641
          bfd44e1c-4bca-4e92-a05d-83c85a40e576

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

          History
          Custom metadata
          International Journal of Astrobiology, 2016, 15(2), pp. 93-105
          13 pages, 1 figure, 3 tables with data on host ages for confirmed PHPs, and on all planets with estimated ages >= 9 Gyr
          astro-ph.EP

          Planetary astrophysics
          Planetary astrophysics

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