Discovery and dynamics of a Sedna-like object with a perihelion of 66 au
arXiv:2508.02162 · doi:10.1038/s41550-025-02595-7
Abstract
Trans-Neptunian objects (TNOs) with large perihelion distances ( au) and semi-major axes ( au) provide insights into the early evolution of the solar system and the existence of a hypothetical distant planet. These objects are still rare and their detection is challenging, yet they play a crucial role in constraining models of solar system formation. Here we report the discovery of a Sedna-like TNO, 2023\,KQ, nicknamed `Ammonite', with au, au, and inclination . Ammonite's orbit does not align with those of the other Sedna-like objects and fills the previously unexplained `-gap' in the observed distribution of distant solar system objects. Simulations demonstrate that Ammonite is dynamically stable over 4.5 billion years. % with less than 1\% variation in its semi-major axis. Our analysis suggests that Ammonite and the other Sedna-like objects may have shared a primordial orbital clustering around 4.2 billion years ago. Furthermore, Ammonite's stable orbit favors larger orbits ( 500 au) rather than closer ones for a large hypothetical planet in present-day trans-Neptunian space.
Accepted manuscript of an article published open access in Nature Astronomy under a Creative Commons Attribution-NonCommercial-NoDerivatives (CC BY-NC-ND 4.0) license. The final published version is available at https://doi.org/10.1038/s41550-025-02595-7
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