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Using the helium triplet as a tracer of the physics of giant planet outflows

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arxiv 2412.05258 v2 pith:3U7E3YE6 submitted 2024-12-06 astro-ph.EP

classification astro-ph.EP
keywords heliumtripletexcessneutralstatearoundconsideredcool
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abstract

Hydrodynamic outflows, such as those observed escaping close-in gas giant planets, are not isothermal in structure. Their highly ionized nature allows them to cool adiabatically at distances beyond several planetary radii. The contrast between the hottest gas temperatures at around 10,000K and the coldest at around 1,000K triggers an excess population of the observable helium triplet. This excess is caused by the suppression of collisional de-excitation from the triplet state at cool temperatures. Using radiation-hydrodynamic simulations, we show that this helium triplet excess may explain the excess broadening seen in HD 189733b's observed transmission spectrum, demonstrating adiabatic cooling of its outflow, confirming its hydrodynamic nature on scales of several planetary radii. However, further observations are required to confirm this conclusion. Furthermore, we explore a range of electron transitions for neutral helium which were not considered in the previous literature. We find that the He$2^1$S state is unavailable as a potential reservoir for He$2^3$S electrons. Additionally, the de-excitation to the ground state must be considered for stellar spectra later than K2 in predicting the correct helium triplet population. Importantly, since triplet helium inherits momentum from ionized helium as it is generated by recombination, it is significantly less prone to fractionation than ground-state neutral helium. However at separations of $\gtrsim 0.05$~au, ionization at the flow base and drag on helium weaken, leading to significant fractionation of the then mostly neutral helium. This in turn, can cause a suppression of the Helium transit depth, even though the helium line width remains large.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. A Self-Consistent 3D Hydrodynamic Model for Helium Transit Signatures in Evaporating Hot Jupiters

    astro-ph.EP 2026-07 conditional novelty 6.0 of 10

    A 3D hydrodynamic model with self-consistent hydrogen-helium chemistry shows stellar winds compress escaping hot-Jupiter atmospheres and suppress the 1083 nm helium triplet signal, while a young star's strong XUV flux...

  2. Stringent Upper Bounds on Atmospheric Mass Loss from Three Neptune-Sized Planets in the TOI-4010 System

    astro-ph.EP 2025-08 conditional novelty 6.0 of 10

    Keck/NIRSPEC observations find no metastable helium absorption from TOI-4010 b, c, or d, placing 95% upper limits on mass loss that challenge standard 1D solar-composition photoevaporation predictions.

  3. A Multi-Species Atmospheric Escape Model with Excited Hydrogen and Helium: Application to HD209458b

    astro-ph.EP 2025-06 conditional novelty 6.0 of 10

    A self-consistent escape model with revised metastable helium rates shows that diffusive separation and 20-40% photoelectron heating efficiency, not intrinsic helium depletion, match HD209458b's weak He I 10830 and H ...

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