Tidally Torn: Why the Most Common Stars May Lack Large, Habitable-Zone Moons

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Main Authors: Patel, Shaan D., Quarles, Billy, Weinberg, Nevin N., Cuntz, Manfred
Format: Preprint
Published: 2025
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author Patel, Shaan D.
Quarles, Billy
Weinberg, Nevin N.
Cuntz, Manfred
author_facet Patel, Shaan D.
Quarles, Billy
Weinberg, Nevin N.
Cuntz, Manfred
contents Earth-like planets in the habitable zone (HZ) of M-dwarfs have recently been targeted in the search for exomoons. We study the stability and lifetime of large (Luna-like) moons, accounting for the effects of 3-body interactions and tidal forces using the N-body simulator rebound and its extension library reboundx. We find that those moons have a notably different likelihood of existence (and, by implication, observability). Large moons orbiting Earth-like planets in the HZs of M4 and M2 dwarfs become unstable well before $10^7$ and $10^8 \textrm{ yr}$, respectively, and in most cases, those orbiting M0-dwarfs become unstable in much less than $10^9 \textrm{ yr}$. We conclude that HZ planets orbiting M-dwarfs are unlikely to harbor large moons, thus affecting the total number of possible moons in our galaxy and the Universe at large. Since moons may help enhance the habitability of their host planet, besides being possibly habitable themselves, these results may have notable implications for exolife, and should also be considered when seeking solutions to the Drake equation and the Fermi paradox.
format Preprint
id arxiv_https___arxiv_org_abs_2511_03625
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Tidally Torn: Why the Most Common Stars May Lack Large, Habitable-Zone Moons
Patel, Shaan D.
Quarles, Billy
Weinberg, Nevin N.
Cuntz, Manfred
Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
Earth-like planets in the habitable zone (HZ) of M-dwarfs have recently been targeted in the search for exomoons. We study the stability and lifetime of large (Luna-like) moons, accounting for the effects of 3-body interactions and tidal forces using the N-body simulator rebound and its extension library reboundx. We find that those moons have a notably different likelihood of existence (and, by implication, observability). Large moons orbiting Earth-like planets in the HZs of M4 and M2 dwarfs become unstable well before $10^7$ and $10^8 \textrm{ yr}$, respectively, and in most cases, those orbiting M0-dwarfs become unstable in much less than $10^9 \textrm{ yr}$. We conclude that HZ planets orbiting M-dwarfs are unlikely to harbor large moons, thus affecting the total number of possible moons in our galaxy and the Universe at large. Since moons may help enhance the habitability of their host planet, besides being possibly habitable themselves, these results may have notable implications for exolife, and should also be considered when seeking solutions to the Drake equation and the Fermi paradox.
title Tidally Torn: Why the Most Common Stars May Lack Large, Habitable-Zone Moons
topic Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2511.03625