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arXiv · 2308.12889

Spectral determination of the colour and vertical structure of dark spots in Neptune's atmosphere

Abstract

Previous observations of dark vortices in Neptune's atmosphere, such as Voyager-2's Great Dark Spot, have been made in only a few, broad-wavelength channels, which has hampered efforts to pinpoint their pressure level and what makes them dark. Here, we present Very Large Telescope (Chile) MUSE spectrometer observations of Hubble Space Telescope's NDS-2018 dark spot, made in 2019. These medium-resolution 475 - 933 nm reflection spectra allow us to show that dark spots are caused by a darkening at short wavelengths (< 700 nm) of a deep ~5-bar aerosol layer, which we suggest is the H$_2$S condensation layer. A deep bright spot, named DBS-2019, is also visible on the edge of NDS-2018, whose spectral signature is consistent with a brightening of the same 5-bar layer at longer wavelengths (> 700 nm). This bright feature is much deeper than previously studied dark spot companion clouds and may be connected with the circulation that generates and sustains such spots.

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Patrick G. J. Irwin, Jack Dobinson, Arjuna James. Michael H. Wong, Leigh N. Fletcher, Michael T. Roman, Nicholas A. Teanby, Daniel Toledo, Glenn S. Orton, Santiago Perez-Hoyos, Agustin Sanchez-Lavega, Lawrence Sromovsky, Amy A. Simon, Raul Morales-Juberias, Imke de Pater, Statia L. Cook. 2023-08-24. Spectral determination of the colour and vertical structure of dark spots in Neptune's atmosphere. https://doi.org/10.1038/s41550-023-02047-0

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