Temperatures Near the Lunar Poles and Their Correlation With Hydrogen Predicted by LEND
暂无分享,去创建一个
[1] N. Chanover,et al. Water within a permanently shadowed lunar crater: Further LCROSS modeling and analysis , 2020, 2009.05080.
[2] D. Britt,et al. Stratigraphy of Ice and Ejecta Deposits at the Lunar Poles , 2020, Geophysical Research Letters.
[3] C. Hibbitts,et al. Molecular water detected on the sunlit Moon by SOFIA , 2020, Nature Astronomy.
[4] J. Head,et al. Volcanically Induced Transient Atmospheres on the Moon: Assessment of Duration, Significance, and Contributions to Polar Volatile Traps , 2020, Geophysical Research Letters.
[5] O. Aharonson,et al. Micro cold traps on the Moon , 2020, Nature Astronomy.
[6] P. Lucey,et al. Impact Gardening as a Constraint on the Age, Source, and Evolution of Ice on Mercury and the Moon , 2020, Journal of Geophysical Research: Planets.
[7] P. Lucey,et al. Seasonal Polar Temperatures on the Moon , 2019, Journal of Geophysical Research: Planets.
[8] J. McLain,et al. The Young Age of the LAMP‐observed Frost in Lunar Polar Cold Traps , 2019, Geophysical Research Letters.
[9] D. Paige,et al. Thick ice deposits in shallow simple craters on the Moon and Mercury , 2019, Nature Geoscience.
[10] P. Gläser,et al. Modeling near-surface temperatures of airless bodies with application to the Moon , 2019, Astronomy & Astrophysics.
[11] R. C. Elphic,et al. Lunar soil hydration constrained by exospheric water liberated by meteoroid impacts , 2019, Nature Geoscience.
[12] Paul G. Lucey,et al. Direct evidence of surface exposed water ice in the lunar polar regions , 2018, Proceedings of the National Academy of Sciences.
[13] W. Boynton,et al. Background and lunar neutron populations detected by LEND and average concentration of near-surface hydrogen near the Moon's poles , 2017, Planetary and Space Science.
[14] J. Oberst,et al. Illumination conditions at the lunar poles: Implications for future exploration , 2017, Planetary and Space Science.
[15] David A. Kring,et al. Lunar volcanism produced a transient atmosphere around the ancient Moon , 2017 .
[16] David E. Smith,et al. Evidence for surface water ice in the lunar polar regions using reflectance measurements from the Lunar Orbiter Laser Altimeter and temperature measurements from the Diviner Lunar Radiometer Experiment. , 2017, Icarus.
[17] Richard D. Starr,et al. Hydrogen distribution in the lunar polar regions , 2017 .
[18] D. Lawrence. A tale of two poles: Toward understanding the presence, distribution, and origin of volatiles at the polar regions of the Moon and Mercury , 2017 .
[19] R. Sagdeev,et al. The Variations of Neutron Component of Lunar Radiation Background from LEND LRO Observations , 2016 .
[20] D. Paige,et al. Evolution of lunar polar ice stability , 2015 .
[21] Kurt D. Retherford,et al. Evidence for exposed water ice in the Moon’s south polar regions from Lunar Reconnaissance Orbiter ultraviolet albedo and temperature measurements , 2015 .
[22] R. Marco Figuera,et al. Illumination conditions at the lunar south pole using high resolution Digital Terrain Models from LOLA , 2014 .
[23] O. Aharonson,et al. THE LUNAR THERMAL ICE PUMP , 2014 .
[24] David J. Lawrence,et al. Identification of surface hydrogen enhancements within the Moon’s Shackleton crater , 2014 .
[25] V. Eke,et al. Lunar polar craters – Icy, rough or just sloping? , 2013, 1312.4749.
[26] V. Eke,et al. How well do we know the polar hydrogen distribution on the Moon? , 2013, 1304.8123.
[27] J. Oberst,et al. Co-registration of laser altimeter tracks with digital terrain models and applications in planetary science , 2013 .
[28] Bradley J. Thomson,et al. Evidence for water ice on the Moon: Results for anomalous polar craters from the LRO Mini‐RF imaging radar , 2013 .
[29] J. Haruyama,et al. An explanation of bright areas inside Shackleton Crater at the Lunar South Pole other than water‐ice deposits , 2013 .
[30] David A. Paige,et al. Thermal Stability of Volatiles in the North Polar Region of Mercury , 2013, Science.
[31] David E. Smith,et al. Testing lunar permanently shadowed regions for water ice: LEND results from LRO , 2012 .
[32] Richard D. Starr,et al. High Spatial Resolution Studies of Epithermal Neutron Emission from the Lunar Poles: Constraints on Hydrogen Mobility , 2012 .
[33] J. Garvin,et al. Testing polar spots of water-rich permafrost on the Moon: LEND observations onboard LRO , 2012 .
[34] A. Vasavada,et al. Lunar equatorial surface temperatures and regolith properties from the Diviner Lunar Radiometer Experiment , 2012 .
[35] David E. Smith,et al. Global maps of lunar neutron fluxes from the LEND instrument , 2012 .
[36] R. Kirk,et al. An upper limit for ice in Shackleton crater as revealed by LRO Mini‐RF orbital radar , 2012 .
[37] David E. Smith,et al. IJ Constraints on the volatile distribution within Shackleton crater at the lunar south pole , 2012 .
[38] D. Lawrence,et al. Two‐dimensional distribution of volatiles in the lunar regolith from space weathering simulations , 2012 .
[39] V. Eke,et al. A QUANTITATIVE COMPARISON OF LUNAR ORBITAL NEUTRON DATA , 2011, 1108.2048.
[40] William Marshall,et al. Locating the LCROSS Impact Craters , 2011, 1103.1687.
[41] V. Eke,et al. Technical Comment on “Hydrogen Mapping of the Lunar South Pole Using the LRO Neutron Detector Experiment LEND” , 2011, Science.
[42] W. Boynton,et al. Response to Comment on “Hydrogen Mapping of the Lunar South Pole Using the LRO Neutron Detector Experiment LEND” , 2011, Science.
[43] P. Spudis,et al. The Interior of Shackleton Crater as Revealed by Mini-RF Orbital Radar , 2011 .
[44] Erwan Mazarico,et al. Illumination conditions of the lunar polar regions using LOLA topography , 2011 .
[45] D. Paige,et al. Effects of orbital evolution on lunar ice stability , 2010 .
[46] A. S. Kozyrev,et al. Hydrogen Mapping of the Lunar South Pole Using the LRO Neutron Detector Experiment LEND , 2010, Science.
[47] William Marshall,et al. Detection of Water in the LCROSS Ejecta Plume , 2010, Science.
[48] Kelly Snook,et al. Diviner Lunar Radiometer Observations of Cold Traps in the Moon’s South Polar Region , 2010, Science.
[49] James A. McGovern,et al. Illumination conditions of the south pole of the Moon derived using Kaguya topography , 2010 .
[50] Erik Asphaug,et al. Volatile retention from cometary impacts on the Moon , 2010 .
[51] D. Paige,et al. Correction to “Cold‐trapped organic compounds at the poles of the Moon and Mercury: Implications for origins” , 2010 .
[52] M. D. Dyar,et al. Character and Spatial Distribution of OH/H2O on the Surface of the Moon Seen by M3 on Chandrayaan-1 , 2009, Science.
[53] Roger N. Clark,et al. Detection of Adsorbed Water and Hydroxyl on the Moon , 2009, Science.
[54] D. Paige,et al. Cold‐trapped organic compounds at the poles of the Moon and Mercury: Implications for origins , 2009 .
[55] V. Eke,et al. The spatial distribution of polar hydrogen deposits on the Moon , 2008, 0810.2478.
[56] Hiroshi Araki,et al. Illumination conditions at the lunar polar regions by KAGUYA(SELENE) laser altimeter , 2008 .
[57] Akira Iwasaki,et al. Lack of Exposed Ice Inside Lunar South Pole Shackleton Crater , 2008, Science.
[58] J. Harmon. Radar Imaging of Mercury , 2007 .
[59] K. Trenberth,et al. Seamless Poleward Atmospheric Energy Transports and Implications for the Hadley Circulation , 2003 .
[60] Richard R. Vondrak,et al. Hydrogen migration to the lunar poles by solar wind bombardment of the moon , 2002 .
[61] A. Vasavada,et al. Near-Surface Temperatures on Mercury and the Moon and the Stability of Polar Ice Deposits☆ , 1999 .
[62] S. Maurice,et al. Fluxes of fast and epithermal neutrons from Lunar Prospector: evidence for water ice at the lunar poles. , 1998, Science.
[63] B. Butler. The migration of volatiles on the surfaces of Mercury and the Moon , 1997 .
[64] Johannes Benkhoff,et al. Mercury's polar caps and the generation of an OH exosphere , 1997 .
[65] M. Cintala,et al. The Barringer Award Address Presented 1996 July 25, Berlin, Germany: Impact experiments related to the evolution of planetary regoliths , 1997 .
[66] S. Nozette,et al. The Clementine Bistatic Radar Experiment , 1994, Science.
[67] Martin A. Slade,et al. Mercury: Full-disk radar images and the detection and stability of ice at the North Pole , 1993 .
[68] James R. Arnold,et al. Ice in the lunar polar regions , 1979 .
[69] S. Keihm,et al. The Revised Lunar Heat Flow Values , 1976 .
[70] R. A. Robie,et al. Specific heats of lunar soils, basalt, and breccias from the Apollo 14, 15, and 16 landing sites, between 90 and 350°K , 1973 .
[71] Bruce C. Murray,et al. On the possible presence of ice on the Moon , 1961 .