English

Towards a Small Prototype Planet Finding Interferometer: The next step in planet finding and characterization in the infrared

Astrophysics 2008-01-31 v1

Abstract

During the last few years, considerable effort has been directed towards large-scale (>> 1BillionUS)missionstodetectandcharacterizeearthlikeplanetsaroundnearbystars,suchastheTerrestrialPlanetFinderInterferometer(TPFI)andDarwinmissions.However,technologicalandbudgetaryissuesaswellasshiftingscienceprioritieswilllikelypreventthesemissionsfromenteringPhaseAuntilthenextdecade.ThesecondaryeclipsetechniqueusingtheSpitzerSpaceTelescopehasbeenusedtodirectlymeasurethetemperatureandemissionspectrumofextrasolarplanets.However,onlyasmallfractionofknownextrasolarplanetsareintransitingorbits.Thus,asimplifiednullinginterferometer,whichproducesanartificialeclipseoroccultation,andoperatesintheneartomidinfrared(e.g. 3to8or10microns),cancharacterizetheatmospheresofthismuchlargersampleoftheknownbutnontransitingexoplanets.Manyotherscientificproblemscanbeaddressedwithasystemlikethis,includingimagingdebrisdisks,activegalacticnuclei,andlowmasscompanionsaroundnearbystars.Wediscusstherationaleforaprobescalemissioninthe1 Billion US) missions to detect and characterize earth-like planets around nearby stars, such as the Terrestrial Planet Finder Interferometer (TPF-I) and Darwin missions. However, technological and budgetary issues as well as shifting science priorities will likely prevent these missions from entering Phase A until the next decade. The secondary eclipse technique using the Spitzer Space Telescope has been used to directly measure the temperature and emission spectrum of extrasolar planets. However, only a small fraction of known extrasolar planets are in transiting orbits. Thus, a simplified nulling interferometer, which produces an artificial eclipse or occultation, and operates in the near- to mid-infrared (e.g. ~ 3 to 8 or 10 microns), can characterize the atmospheres of this much larger sample of the known but non-transiting exoplanets. Many other scientific problems can be addressed with a system like this, including imaging debris disks, active galactic nuclei, and low mass companions around nearby stars. We discuss the rationale for a probe-scale mission in the 600-800 Million range, which we name here as the Small Prototype Planet Finding Interferometer (SPPFI).

Keywords

Cite

@article{arxiv.0801.4752,
  title  = {Towards a Small Prototype Planet Finding Interferometer: The next step in planet finding and characterization in the infrared},
  author = {W. C. Danchi and D. Deming and K. G. Carpenter and R. K. Barry and P. Hinz and K. J. Johnston and P. Lawson and O. Lay and J. D. Monnier and L. J. Richardson and S. Rinehart and W. Traub},
  journal= {arXiv preprint arXiv:0801.4752},
  year   = {2008}
}

Comments

8 pages, 4 figures, white paper for Exoplanet Task Force, March 2007

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