A bimodal distribution of haze in Pluto's atmosphere
Siteng Fan, Peter Xiang Gao, Xi Zhang, Danica Adams, Nicholas W. Kutsop, C. J. Bierson, Chao Liu, Jiani Yang, L. A. Young, Andrew Yuk Sun Cheng, Yuk Ling Yung
Abstract
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Siteng Fan, Peter Xiang Gao, Xi Zhang, Danica Adams, Nicholas W. Kutsop, C. J. Bierson, Chao Liu, Jiani Yang, L. A. Young, Andrew Yuk Sun Cheng, Yuk Ling Yung
Abstract
Open-access reader
Abstract Pluto, Titan, and Triton make up a unique class of solar system bodies, with icy surfaces and chemically reducing atmospheres rich in organic photochemistry and haze formation. Hazes play important roles in these atmospheres, with physical and chemical processes highly dependent on particle sizes, but the haze size distribution in reducing atmospheres is currently poorly understood. Here we report observational evidence that Pluto's haze particles are bimodally distributed, which successfully reproduces the full phase scattering observations from New Horizons. This result suggests a dimensional transition in organic haze formation, and indicates that both oxidizing and reducing atmospheres can produce multi-modal hazes.
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Abstract Pluto, Titan, and Triton make up a unique class of solar system bodies, with icy surfaces and chemically reducing atmospheres rich in organic photochemistry and haze formation. Hazes play important roles in these atmospheres, with physical and chemical processes highly dependent on particle sizes, but the haze size distribution in reducing atmospheres is currently poorly understood. Here we report observational evidence that Pluto's haze particles are bimodally distributed, which successfully reproduces the full phase scattering observations from New Horizons. This result suggests a dimensional transition in organic haze formation, and indicates that both oxidizing and reducing atmospheres can produce multi-modal hazes.
Key concepts: Pluto, Haze, Atmosphere (unit), Astrobiology, Distribution (mathematics), Environmental science, Atmospheric sciences, Meteorology