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DREAM II. The spin-orbit angle distribution of close-in exoplanets under the lens of tides

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arxiv 2305.00829 v1 pith:6CVN3AMF submitted 2023-05-01 astro-ph.EP

classification astro-ph.EP
keywords tidaldistributionspin-orbitinteractionsangleorbitsanglesclose-in
verification ladder T0 review T1 audit T2 compute T3 formal
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The spin-orbit angle, or obliquity, is a powerful observational marker that allows us to access the dynamical history of exoplanetary systems. Here, we have examined the distribution of spin-orbit angles for close-in exoplanets and put it in a statistical context of tidal interactions between planets and their stars. We confirm the observed trends between the obliquity and physical quantities directly connected to tides, namely the stellar effective temperature, the planet-to-star mass ratio, and the scaled orbital distance. We further devised a tidal efficiency factor combining critical parameters that control the strength of tidal effects and used it to corroborate the strong link between the spin-orbit angle distribution and tidal interactions. In particular, we developed a readily usable formula to estimate the probability that a system is misaligned, which will prove useful in global population studies. By building a robust statistical framework, we reconstructed the distribution of the three-dimensional spin-orbit angles, allowing for a sample of nearly 200 true obliquities to be analyzed for the first time. This realistic distribution maintains the sky-projected trends, and additionally hints toward a striking pileup of truly aligned systems. The comparison between the full population and a pristine subsample unaffected by tidal interactions suggests that perpendicular architectures are resilient toward tidal realignment, providing evidence that orbital misalignments are sculpted by disruptive dynamical processes that preferentially lead to polar orbits. On the other hand, star-planet interactions seem to efficiently realign or quench the formation of any tilted configuration other than for polar orbits, and in particular for antialigned orbits.

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Cited by 1 Pith paper

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  1. Spot-Crossing Variations Confirm a Misaligned Orbit for a Planet Transiting an M Dwarf

    astro-ph.EP 2025-06 conditional novelty 4.0 of 10

    Photometry and transit-shape modeling of TOI-3884 reveal an 11-day stellar rotation period and a polar starspot, confirming a misaligned orbit (true obliquity about 77 degrees) for the hot Neptune TOI-3884 b.

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