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  Martian Proton Aurora Brightening Reveals Atmospheric Ion Loss Intensifying

He, F., Fan, K., Hughes, A., Wei, Y., Cui, J., Schneider, N., et al. (2023). Martian Proton Aurora Brightening Reveals Atmospheric Ion Loss Intensifying. Geophysical Research Letters, 50, e2023GL102723. doi:10.1029/2023GL102723.

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 Creators:
He, Fei, Author
Fan, Kai, Author
Hughes, Andréa., Author
Wei, Yong, Author
Cui, Jun, Author
Schneider, Nicholas, Author
Fraenz, M.1, Author           
Yao, Zhonghua, Author
Rong, Zhaojin, Author
Chai, Lihui, Author
Yan, Limei, Author
Wu, Shi-Qi, Author
Zhang, Xiao-Xin, Author
Affiliations:
1Planetary Science Department, Max Planck Institute for Solar System Research, Max Planck Society, ou_1832288              

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Free keywords: Martian proton aurora; ion escape; Martian atmosphere; Martian ionosphere; solar wind; Earth Science
 Abstract: The Martian proton aurora is a distinct aurora phenomenon resulting from the direct deposition of solar wind energy into Mars' dayside atmosphere. What solar wind parameters influence the aurora activity in the short term is yet unknown, as are the associated repercussions in the Martian atmospheric ion loss. Here we present observational evidence of synchronized proton aurora brightening and atmospheric ion loss intensifying on Mars, controlled by solar wind dynamic pressure, using observations by the Mars Atmosphere and Volatile Evolution spacecraft. The solar wind dynamic pressure possibly has a saturation effect on brightening proton aurora. Significant erosion of the Martian ionosphere during periods of high dynamic pressure indicates at least five-to-tenfold increase in atmospheric ion loss. An empirical relationship between ion escape rate and auroral emission enhancement is established, providing a new proxy of Mars' atmospheric ion loss with optical imaging that may be used remotely and with greater flexibility.

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 Dates: 2023
 Publication Status: Issued
 Pages: -
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 Table of Contents: -
 Rev. Type: -
 Identifiers: DOI: 10.1029/2023GL102723
ISSN: 0094-8276
 Degree: -

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Title: Geophysical Research Letters
Source Genre: Journal
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Pages: - Volume / Issue: 50 Sequence Number: - Start / End Page: e2023GL102723 Identifier: -