The role of inner disk edges in shaping ultra-short-period planet systems around late M dwarfs

Fuente: arXiv
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Main Authors: Brandenberger, S. N., Sanchez, M., Van der Marel, N., Vidotto, A. A., Miguel, Y.
Format: Preprint
Published: 2026
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author Brandenberger, S. N.
Sanchez, M.
Van der Marel, N.
Vidotto, A. A.
Miguel, Y.
author_facet Brandenberger, S. N.
Sanchez, M.
Van der Marel, N.
Vidotto, A. A.
Miguel, Y.
contents Close-in rocky planets are the most common type of exoplanets around late M dwarfs, ranging from more temperate worlds to highly irradiated lava planets with molten surfaces, and many theoretical studies have attempted to explain their formation. However, the origin of rocky planets with orbital periods shorter than one day, known as ultra-short-period (USP) planets, remains uncertain. We aim to investigate whether the formation and survival of USP planets is connected to the location of the inner edge of the protoplanetary disk, considering different disk edge prescriptions. We use N-body simulations that include planet-disk interactions, star-planet tidal interactions, and relativistic corrections, applied to a sample of lunar-mass planetary seeds growing via pebble accretion in a low-viscosity disk ($α_t = 10^{-4}$). The inner edge of the disk is modeled in three ways: as a fixed close-in edge, as an outward-evolving edge set by the magnetospheric truncation radius, and as an inward-evolving edge defined by the corotation radius. USP planet formation appears to be tightly controlled by the location of the disk's inner edge. Our simulations show that only the close-in-fixed-edge Scenario and the inward-evolving-edge Scenario are capable of producing USP planets, as planets tend to follow the movement of the disk's inner edge. This suggests that USP planet formation is favored when the inner edge remains close to the corotation radius of a rapidly rotating star.
format Preprint
id arxiv_https___arxiv_org_abs_2603_26204
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle The role of inner disk edges in shaping ultra-short-period planet systems around late M dwarfs
Brandenberger, S. N.
Sanchez, M.
Van der Marel, N.
Vidotto, A. A.
Miguel, Y.
Earth and Planetary Astrophysics
Close-in rocky planets are the most common type of exoplanets around late M dwarfs, ranging from more temperate worlds to highly irradiated lava planets with molten surfaces, and many theoretical studies have attempted to explain their formation. However, the origin of rocky planets with orbital periods shorter than one day, known as ultra-short-period (USP) planets, remains uncertain. We aim to investigate whether the formation and survival of USP planets is connected to the location of the inner edge of the protoplanetary disk, considering different disk edge prescriptions. We use N-body simulations that include planet-disk interactions, star-planet tidal interactions, and relativistic corrections, applied to a sample of lunar-mass planetary seeds growing via pebble accretion in a low-viscosity disk ($α_t = 10^{-4}$). The inner edge of the disk is modeled in three ways: as a fixed close-in edge, as an outward-evolving edge set by the magnetospheric truncation radius, and as an inward-evolving edge defined by the corotation radius. USP planet formation appears to be tightly controlled by the location of the disk's inner edge. Our simulations show that only the close-in-fixed-edge Scenario and the inward-evolving-edge Scenario are capable of producing USP planets, as planets tend to follow the movement of the disk's inner edge. This suggests that USP planet formation is favored when the inner edge remains close to the corotation radius of a rapidly rotating star.
title The role of inner disk edges in shaping ultra-short-period planet systems around late M dwarfs
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2603.26204