Alternate oscillations of Martian hydrogen and oxygen upper atmospheres during a major dust storm
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T. Kimura | K. Yoshioka | G. Murakami | I. Yoshikawa | T. Usui | K. Masunaga | N. Yoshida | N. Terada | H. Nakagawa | Yuki Nakamura | F. Tsuchiya | A. Yamazaki | T. Kuroda | Yudai Suzuki | Y. Nakamura
[1] M. Benna,et al. Seasonal and Dust‐Related Variations in the Dayside Thermospheric and Ionospheric Compositions of Mars Observed by MAVEN/NGIMS , 2021, Journal of Geophysical Research: Planets.
[2] Manish R. Patel,et al. Martian water loss to space enhanced by regional dust storms , 2021, Nature Astronomy.
[3] F. Lefévre,et al. Revealing a High Water Abundance in the Upper Mesosphere of Mars With ACS Onboard TGO , 2021, Geophysical Research Letters.
[4] Y. Wei,et al. Species‐dependent Response of the Martian Ionosphere to the 2018 Global Dust Event , 2021, Journal of Geophysical Research: Planets.
[5] F. Lefévre,et al. Multi‐Annual Monitoring of the Water Vapor Vertical Distribution on Mars by SPICAM on Mars Express , 2020, Journal of Geophysical Research: Planets.
[6] K. Yoshioka,et al. Martian Oxygen and Hydrogen Upper Atmospheres Responding to Solar and Dust Storm Drivers: Hisaki Space Telescope Observations , 2020, Journal of Geophysical Research: Planets.
[7] P. Mahaffy,et al. Hydrogen escape from Mars is driven by seasonal and dust storm transport of water , 2020, Science.
[8] M. Yamada,et al. Vertical Coupling Between the Cloud‐Level Atmosphere and the Thermosphere of Venus Inferred From the Simultaneous Observations by Hisaki and Akatsuki , 2020, Journal of Geophysical Research: Planets.
[9] J. Cui,et al. Dust tides and rapid meridional motions in the Martian atmosphere during major dust storms , 2020, Nature Communications.
[10] E. Millour,et al. Stormy water on Mars: The distribution and saturation of atmospheric water during the dusty season , 2020, Science.
[11] F. Daerden,et al. Water Vapor Vertical Profiles on Mars in Dust Storms Observed by TGO/NOMAD , 2019, Journal of Geophysical Research: Planets.
[12] J. Gérard,et al. Characteristics of Mars UV Dayglow Emissions From Atomic Oxygen at 130.4 and 135.6 nm: MAVEN/IUVS Limb Observations and Modeling , 2019, Journal of Geophysical Research: Space Physics.
[13] J. Murphy,et al. Structural and Compositional Changes in the Upper Atmosphere Related to the PEDE‐2018 Dust Event on Mars as Observed by MAVEN NGIMS , 2018, Geophysical Research Letters.
[14] B. Jakosky,et al. Mars H Escape Rates Derived From MAVEN/IUVS Lyman Alpha Brightness Measurements and Their Dependence on Model Assumptions , 2018, Journal of Geophysical Research: Planets.
[15] J. Schofield,et al. Hydrogen escape from Mars enhanced by deep convection in dust storms , 2018 .
[16] J. Chaufray,et al. Seasonal Changes in Hydrogen Escape From Mars Through Analysis of HST Observations of the Martian Exosphere Near Perihelion , 2017 .
[17] T. Kimura,et al. Extreme ultraviolet spectra of Venusian airglow observed by EXCEED , 2017, Icarus.
[18] B. Jakosky,et al. The Variability of Atmospheric Deuterium Brightness at Mars: Evidence for Seasonal Dependence , 2017 .
[19] F. Leblanc,et al. Dawn-dusk difference of periodic oxygen EUV dayglow variations at Venus observed by Hisaki , 2017 .
[20] J. Halekas,et al. Seasonal variability of the hydrogen exosphere of Mars , 2017 .
[21] N. Schneider,et al. Elevated atmospheric escape of atomic hydrogen from Mars induced by high-altitude water , 2017 .
[22] B. Jakosky,et al. The MAVEN EUVM model of solar spectral irradiance variability at Mars: Algorithms and results , 2017 .
[23] G. Murakami,et al. The geocoronal responses to the geomagnetic disturbances , 2017 .
[24] J. Chaufray,et al. Periodic variations of oxygen EUV dayglow in the upper atmosphere of Venus: Hisaki/EXCEED observations , 2015 .
[25] Arnett,et al. The Neutral Gas and Ion Mass Spectrometer on the Mars Atmosphere and Volatile Evolution Mission , 2015 .
[26] Bruce M. Jakosky,et al. Initial results from the MAVEN mission to Mars , 2015 .
[27] T. Woods,et al. The Solar Extreme Ultraviolet Monitor for MAVEN , 2015 .
[28] M. Fujimoto,et al. Transient internally driven aurora at Jupiter discovered by Hisaki and the Hubble Space Telescope , 2015 .
[29] J. Chaufray,et al. A rapid decrease of the hydrogen corona of Mars , 2014 .
[30] T. Kimura,et al. Extreme Ultraviolet Radiation Measurement for Planetary Atmospheres/Magnetospheres from the Earth-Orbiting Spacecraft (Extreme Ultraviolet Spectroscope for Exospheric Dynamics: EXCEED) , 2014 .
[31] F. Montmessin,et al. Unexpected variability of Martian hydrogen escape , 2014 .
[32] Takeshi Sakanoi,et al. The extreme ultraviolet spectroscope for planetary science, EXCEED , 2013 .
[33] E. Sebastián,et al. REMS: The Environmental Sensor Suite for the Mars Science Laboratory Rover , 2012 .
[34] R. Anderson,et al. Mars Science Laboratory Mission and Science Investigation , 2012 .
[35] F. Leblanc,et al. Martian oxygen density at the exobase deduced from O I 130.4‐nm observations by Spectroscopy for the Investigation of the Characteristics of the Atmosphere of Mars on Mars Express , 2009 .
[36] David A. Paige,et al. Mars Climate Sounder: An investigation of thermal and water vapor structure, dust and condensate distributions in the atmosphere, and energy balance of the polar regions , 2007 .
[37] S. Smrekar,et al. An overview of the Mars Reconnaissance Orbiter (MRO) science mission , 2007 .
[38] F. Leblanc,et al. SPICAM on Mars Express: Observing modes and overview of UV spectrometer data and scientific results , 2006 .
[39] M. Maggi,et al. Carbon dioxide photoelectron energy peaks at Mars , 2006 .
[40] B. Murray,et al. Modelling the impact of noctilucent cloud formation on atomic oxygen and other minor constituents of the summer mesosphere , 2004 .
[41] B. Murray,et al. Atomic oxygen depletion in the vicinity of noctilucent clouds , 2003 .
[42] V. Krasnopolsky,et al. Detection of atomic deuterium in the upper atmosphere of Mars. , 1998, Science.
[43] J. Scargle. Studies in astronomical time series analysis. II - Statistical aspects of spectral analysis of unevenly spaced data , 1982 .
[44] J. Barnes. Midlatitude Disturbances in the Martian Atmosphere: A Second Mars Year , 1981 .
[45] J. Barnes. Time spectral analysis of midlatitude disturbances in the Martian atmosphere , 1980 .
[46] N. Lomb. Least-squares frequency analysis of unequally spaced data , 1976 .
[47] D. Hunten,et al. Production and escape of hydrogen on Mars , 1970 .
[48] J. W. Chamberlain,et al. PLANETARY CORONAE AND ATMOSPHERIC EVAPORATION , 1963 .
[49] F. Daerden,et al. Planet‐Wide Ozone Destruction in the Middle Atmosphere on Mars During Global Dust Storm , 2022 .
[50] F. Forget,et al. Density and temperatures of the upper Martian atmosphere measured by stellar occultations with Mars Express SPICAM , 2009 .
[51] T. Shimazaki. Photochemical stability of CO2 in the Martian atmosphere - Reevaluation of the eddy diffusion coefficient and the role of water vapor , 1989 .