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The scientific value of a sustained exploration program at the aristarchus plateau

  • Timothy D. Glotch
  • , Erica R. Jawin
  • , Benjamin T. Greenhagen
  • , Joshua T. Cahill
  • , David J. Lawrence
  • , Ryan N. Watkins
  • , Daniel P. Moriarty
  • , Nandita Kumari
  • , Shuai Li
  • , Paul G. Lucey
  • , Matthew A. Siegler
  • , Jianqing Feng
  • , Laura B. Breitenfeld
  • , Carlton C. Allen
  • , Hanna Nekvasil
  • , David A. Paige
  • Smithsonian Institution
  • Johns Hopkins University Applied Physics Laboratory
  • Arctic Slope Regional Corporation Federal
  • National Aeronautics and Space Administration
  • NASA Goddard Space Flight Center
  • Stony Brook University
  • University of Hawai'i at Mānoa
  • Planetary Science Institute
  • Southern Methodist University
  • NASA Johnson Space Center
  • University of California at Los Angeles

Research output: Contribution to journalArticlepeer-review

24 Scopus citations

Abstract

The Aristarchus plateau hosts a diversity of volcanic features, including the largest pyroclastic deposit on the Moon, the largest sinuous rille on the Moon, and intrusive and extrusive examples of evolved, Th-rich silicic lithologies. We provide an overview of previous remote-sensing measurements of the Aristarchus plateau and provide new analyses of Diviner Lunar Radiometer thermal IR data, Lunar Prospector Gamma Ray Spectrometer Th data, Chang'e-5 Microwave Radiometer data, and hyperspectral and multispectral visible/near-infrared images and spectra from the Chandrayaan-1 Moon Mineralogy Mapper and the Kaguya Multispectral Imager. The rich diversity of volcanic features on the Aristarchus plateau presents an opportunity for a sustained science and exploration program. We suggest a series of missions to the Aristarchus crater floor or ejecta, the Cobra Head, and Herodotus Mons to investigate the link between pyroclastic, effusive basaltic, and silicic volcanism in the region. Such missions would enable analyses of silicic rocks that are rare in the Apollo sample collection and demonstrate in situ resource utilization of FeO- and H2O-bearing pyroclastic materials.

Original languageEnglish
Article number136
JournalPlanetary Science Journal
Volume2
Issue number4
DOIs
StatePublished - Aug 2021

Keywords

  • Lunar evolution (952)
  • Lunar science (972)
  • The moon (1692)
  • Volcanoes (1780)

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