Studying Exoplanets in the Radio from the Moon
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arXiv
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2025
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| author | Turner, Jake D. Burns, Jack O. Rapetti, David Zarka, Philippe Grießmeier, Jean-Mathias Bowman, Judd Hallinan, Gregg Hibbard, Joshua Jones, Johnny Dorigo Lamy, Laurent Louis, Corentin K. Lovelace, Richard Mahesh, Nivedita Polidan, Ronald Zhang, Xiang |
| author_facet | Turner, Jake D. Burns, Jack O. Rapetti, David Zarka, Philippe Grießmeier, Jean-Mathias Bowman, Judd Hallinan, Gregg Hibbard, Joshua Jones, Johnny Dorigo Lamy, Laurent Louis, Corentin K. Lovelace, Richard Mahesh, Nivedita Polidan, Ronald Zhang, Xiang |
| contents | Exoplanets with and without a magnetic field are predicted to form, behave, and evolve very differently. Therefore, there is great need to directly constrain these fields to holistically understand the properties of exoplanets including their potential habitability. This goal aligns with the Astro2020 Decadal Survey recommendations. Observing planetary auroral radio emissions is among the most promising detection methods, but decades of searching have yet to yield a conclusive detection, though promising hints are now emerging from ground-based radio telescopes. However, these ground-based efforts are fundamentally limited by Earth's ionosphere, which blocks the low-frequency signals (<10 MHz) expected from terrestrial and Neptune-like exoplanets. In this white paper, we outline a strategy to overcome this barrier by utilizing the unique environment of the Moon. We discuss how the upcoming LuSEE-Night and ROLSES pathfinder missions will study our Solar System's planets as exoplanet analogs and place the first meaningful upper limits on exoplanetary radio flux below 10 MHz. Furthermore, we explore the revolutionary potential of the proposed future lunar arrays FarView and FARSIDE. For example, FarView will be sensitive enough to study the magnetic fields of a diverse set of exoplanets (super-Earths to gas giants) and an order of magnitude more Jupiter-like planets than ground-based telescopes, providing crucial tests for dynamo theory. Most significantly, FARSIDE will be able to detect the magnetospheres of nearby terrestrial exoplanets, offering a powerful synergy with atmospheric characterization efforts by JWST and HWO to fully assess their potential habitability. By opening this unexplored low-frequency window, radio astronomy from the Moon is poised to transform the field of exoplanet magnetospheric science. [Abridged] |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2508_09222 |
| institution | arXiv |
| publishDate | 2025 |
| record_format | arxiv |
| spellingShingle | Studying Exoplanets in the Radio from the Moon Turner, Jake D. Burns, Jack O. Rapetti, David Zarka, Philippe Grießmeier, Jean-Mathias Bowman, Judd Hallinan, Gregg Hibbard, Joshua Jones, Johnny Dorigo Lamy, Laurent Louis, Corentin K. Lovelace, Richard Mahesh, Nivedita Polidan, Ronald Zhang, Xiang Instrumentation and Methods for Astrophysics Earth and Planetary Astrophysics Exoplanets with and without a magnetic field are predicted to form, behave, and evolve very differently. Therefore, there is great need to directly constrain these fields to holistically understand the properties of exoplanets including their potential habitability. This goal aligns with the Astro2020 Decadal Survey recommendations. Observing planetary auroral radio emissions is among the most promising detection methods, but decades of searching have yet to yield a conclusive detection, though promising hints are now emerging from ground-based radio telescopes. However, these ground-based efforts are fundamentally limited by Earth's ionosphere, which blocks the low-frequency signals (<10 MHz) expected from terrestrial and Neptune-like exoplanets. In this white paper, we outline a strategy to overcome this barrier by utilizing the unique environment of the Moon. We discuss how the upcoming LuSEE-Night and ROLSES pathfinder missions will study our Solar System's planets as exoplanet analogs and place the first meaningful upper limits on exoplanetary radio flux below 10 MHz. Furthermore, we explore the revolutionary potential of the proposed future lunar arrays FarView and FARSIDE. For example, FarView will be sensitive enough to study the magnetic fields of a diverse set of exoplanets (super-Earths to gas giants) and an order of magnitude more Jupiter-like planets than ground-based telescopes, providing crucial tests for dynamo theory. Most significantly, FARSIDE will be able to detect the magnetospheres of nearby terrestrial exoplanets, offering a powerful synergy with atmospheric characterization efforts by JWST and HWO to fully assess their potential habitability. By opening this unexplored low-frequency window, radio astronomy from the Moon is poised to transform the field of exoplanet magnetospheric science. [Abridged] |
| title | Studying Exoplanets in the Radio from the Moon |
| topic | Instrumentation and Methods for Astrophysics Earth and Planetary Astrophysics |
| url | https://arxiv.org/abs/2508.09222 |