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Updated: Apr 14, 2026

Simulating Imaging of Large Scale Radio Arrays on the Lunar Surface
Published on: July 30, 2020
Lunar origin of Earth quasi-satellite Kamo'oalewa
Meng-Hua Zhu1, Alessandro Morbidelli2, Zichen Wei3
1State Key Laboratory of Lunar and Planetary Sciences, Macau University of Science and Technology, Macau 999087, China.
Abstract:
Asteroid Kamo'oalewa is an Earth quasi-satellite that orbits the Sun along the same path as Earth. Its visible and near-infrared reflectance (VNIR) spectrum, observed from Earth-based telescopes, is highly reddened and differs from typical spectra of main belt asteroids, but resembles that of space-weathered lunar samples, suggesting a lunar origin. However, whether Kamo'oalewa originated from the Moon remains unknown. Here, we report that Kamo'oalewa's spectrum closely matches the in situ spectra observed by Yutu-1 rover and the laboratory-measured spectra of Chang'E-5 lunar soils, which supports its lunar origin. We further find, based on the Moon Mineralogy Mapper's hyperspectral observations, a widespread presence of spectra similar to that of Kamo'oalewa on the lunar nearside, particularly in regions around Tycho, Aristarchus, Glushko, Thales, and Proclus craters. Our modeling of impact-induced fragments and their subsequent dynamical trajectories indicates that only those ejected from Tycho crater could escape the Earth-Moon system and become current Earth's co-orbitals, suggesting that Tycho is the most likely source crater of Kamo'oalewa. The lunar origin of Kamo'oalewa sheds new light on the formation of near-Earth objects and promises to advance our understanding of the Moon's youthful geological features and complex anorthositic crust through the sampling of this asteroid by the forthcoming Tianwen-2 mission.
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