High abundance of solar wind-derived water in lunar soils from the middle latitude

Author:

Xu Yuchen1ORCID,Tian Heng-Ci2ORCID,Zhang Chi2,Chaussidon Marc3ORCID,Lin Yangting2,Hao Jialong2ORCID,Li Ruiying2ORCID,Gu Lixin2ORCID,Yang Wei2ORCID,Huang Liying1ORCID,Du Jun1ORCID,Yang Yazhou1ORCID,Liu Yang1ORCID,He Huaiyu4ORCID,Zou Yongliao1ORCID,Li Xianhua4ORCID,Wu Fuyuan4ORCID

Affiliation:

1. State Key Laboratory of Space Weather, National Space Science Center, Chinese Academy of Sciences, Beijing 100190, China

2. Key Laboratory of Earth and Planetary Physics, Institute of Geology and Geophysics, Chinese Academy of Sciences, Beijing 100029, China

3. Institut de Physique du Globe de Paris, Université de Paris, CNRS, Paris 75005, France

4. State Key Laboratory of Lithospheric Evolution, Institute of Geology and Geophysics, Chinese Academy of Sciences, Beijing 100029, China

Abstract

Remote sensing data revealed that the presence of water (OH/H 2 O) on the Moon is latitude-dependent and probably time-of-day variation, suggesting a solar wind (SW)-originated water with a high degassing loss rate on the lunar surface. However, it is unknown whether or not the SW-derived water in lunar soil grains can be preserved beneath the surface. We report ion microprobe analyses of hydrogen abundances, and deuterium/hydrogen ratios of the lunar soil grains returned by the Chang’e-5 mission from a higher latitude than previous missions. Most of the grain rims (topmost ~100 nm) show high abundances of hydrogen (1,116 to 2,516 ppm) with extremely low δD values (−908 to −992‰), implying nearly exclusively a SW origin. The hydrogen-content depth distribution in the grain rims is phase-dependent, either bell-shaped for glass or monotonic decrease for mineral grains. This reveals the dynamic equilibrium between implantation and outgassing of SW-hydrogen in soil grains on the lunar surface. Heating experiments on a subset of the grains further demonstrate that the SW-implanted hydrogen could be preserved after burial. By comparing with the Apollo data, both observations and simulations provide constraints on the governing role of temperature (latitude) on hydrogen implantation/migration in lunar soils. We predict an even higher abundance of hydrogen in the grain rims in the lunar polar regions (average ~9,500 ppm), which corresponds to an estimation of the bulk water content of ~560 ppm in the polar soils assuming the same grain size distribution as Apollo soils, consistent with the orbit remote sensing result.

Funder

National Natural Science Foundation of China

Key Research program of Chinese Academy of Sciences

Pre-research project on Civil Aerospace Technologies by CNSA

key research program of the Institute of Geology and Geophysics, CAS

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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