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Circular polarization signals of cloudy (exo)planets

Abstract

The circular polarization of light that planets reflect is often neglected because it is very small compared to the linear polarization. It could, however, provide information on a planet's atmosphere and surface, and on the presence of life, because homochiral molecules that are the building blocks of life on Earth are known to reflect circularly polarized light. We compute PcP_c, the degree of circular polarization, for light that is reflected by rocky (exo)planets with liquid water or sulfuric acid solution clouds, both spatially resolved across the planetary disk and, for planets with patchy clouds, integrated across the planetary disk, for various planetary phase angles α\alpha. The optical thickness and vertical distribution of the atmospheric gas and clouds, the size parameter and refractive index of the cloud particles, and α\alpha all influence PcP_c. Spatially resolved, PcP_c varies between ±0.20%\pm 0.20\% (the sign indicates the polarization direction). Only for small gas optical thicknesses above the clouds do significant sign changes (related to cloud particle properties) across the planets' hemispheres occur. For patchy clouds, the disk--integrated PcP_c is typically smaller than ±0.025%\pm 0.025\%, with maximums for α\alpha between 4040^\circ and 7070^\circ, and 120120^\circ to 140140^\circ. As expected, the disk--integrated PcP_c is virtually zero at α=0\alpha=0^\circ and 180^\circ. The disk--integrated PcP_c is also very small at α100\alpha \approx 100^\circ. Measuring circular polarization signals appears to be challenging with current technology. The small atmospheric circular polarization signal could, however, allow the detection of circular polarization due to homochiral molecules. Confirmation of the detectability of such signals requires better knowledge of the strength of circular polarization signals of biological sources.Comment: 15 pages, 11 figures, Accepted for publication in Astronomy and Astrophysic

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    Last time updated on 31/03/2019