2012Unpublished venueRequires access

The Exozodiacal Dust Problem for Direct Observations of ExoEarths

Aki Roberge, Christine Chen, R. Millan‐Gabet, Alycia J. Weinberger, Philip M. Hinz, Karl R. Stapelfeldt, Olivier Absil, Marc J. Kuchner, G. Bryden, The Nasa Exopag

Open publisher page 62 citations

Abstract

Debris dust in the habitable zones of stars – otherwise known as exozodiacal dust – comes from extrasolar asteroids and comets and is thus an expected part of a planetary system. Back-ground flux from the Solar System’s zodiacal dust and the exozodiacal dust in the target system is likely to be the largest source of astrophysical noise in direct observations of terrestrial plan-ets in the habitable zones of nearby stars. Furthermore, dust structures like clumps, thought to be produced by dynamical interactions with exoplanets, are a possible source of confusion. In this paper, we qualitatively assess the primary impact of exozodical dust on high-contrast direct imaging at optical wavelengths, such as would be performed with a coronagraph. Then we present the sensitivity of previous, current, and near-term facilities to thermal emission from debris dust at all distances from nearby solar-type stars, as well as our current knowledge of dust levels from recent surveys. Finally, we address the other method of detecting debris dust, through high-contrast imaging in scattered light. This method is currently far less sensitive

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What this paper is about

Debris dust in the habitable zones of stars – otherwise known as exozodiacal dust – comes from extrasolar asteroids and comets and is thus an expected part of a planetary system. Back-ground flux from the Solar System’s zodiacal dust and the exozodiacal dust in the target system is likely to be the largest source of astrophysical noise in direct observations of terrestrial plan-ets in the habitable zones of nearby stars. Furthermore, dust structures like clumps, thought to be produced by dynamical interactions with exoplanets, are a possible source of confusion. In this paper, we qualitatively assess the primary impact of exozodical dust on high-contrast direct imaging at optical wavelengths, such as would be performed with a coronagraph. Then we present the sensitivity of previous, current, and near-term facilities to thermal emission from debris dust at all distances from nearby solar-type stars, as well as our current knowledge of dust levels from recent surveys. Finally, we address the other method of detecting debris dust, through high-contrast imaging in scattered light. This method is currently far less sensitive

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Available abstract

Debris dust in the habitable zones of stars – otherwise known as exozodiacal dust – comes from extrasolar asteroids and comets and is thus an expected part of a planetary system. Back-ground flux from the Solar System’s zodiacal dust and the exozodiacal dust in the target system is likely to be the largest source of astrophysical noise in direct observations of terrestrial plan-ets in the habitable zones of nearby stars. Furthermore, dust structures like clumps, thought to be produced by dynamical interactions with exoplanets, are a possible source of confusion. In this paper, we qualitatively assess the primary impact of exozodical dust on high-contrast direct imaging at optical wavelengths, such as would be performed with a coronagraph. Then we present the sensitivity of previous, current, and near-term facilities to thermal emission from debris dust at all distances from nearby solar-type stars, as well as our current knowledge of dust levels from recent surveys. Finally, we address the other method of detecting debris dust, through high-contrast imaging in scattered light. This method is currently far less sensitive

Key concepts: Zodiacal light, Exoplanet, Physics, Astronomy, Solar System, Astrobiology, Planetary habitability, Circumstellar habitable zone

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