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Detecting Magnetic Fields in Exoplanets with Spectropolarimetry of the Helium Line at 1083 nm

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arxiv 1910.02504 v2 pith:2Y7SCKMB submitted 2019-10-06 astro-ph.EP

classification astro-ph.EP
keywords magneticfieldfieldsexoplanetsatmospheresheliumlinesolar
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

The magnetic fields of the solar system planets provide valuable insights into the planets' interiors and can have dramatic consequences for the evolution of their atmospheres and interaction with the solar wind. However, we have little direct knowledge of magnetic fields in exoplanets. Here we present a method for detecting magnetic fields in the atmospheres of close-in exoplanets based on spectropolarimetric transit observations at the wavelength of the helium line at 1083 nm. This methodology has been successfully applied before for exploring magnetic fields in solar coronal filaments. Strong absorption signatures (transit depths on the order of a few percent) in the 1083 nm line have recently been observed for several close-in exoplanets. We show that in the conditions in these escaping atmospheres, metastable helium atoms should be optically pumped by the starlight and, for field strengths more than a few $\times 10^{-4}$ G, should align with the magnetic field. This results in linearly polarized absorption at 1083 nm that traces the field direction (the Hanle effect), which we explore by both analytic computation and with the Hazel numerical code. The linear polarization $\sqrt{Q^2+U^2}/I$ ranges from $\sim 10^{-3}$ in optimistic cases down to a few $\times 10^{-5}$ for particularly unfavorable cases, with very weak dependence on field strength. The line-of-sight component of the field results in a slight circular polarization (the Zeeman effect), also reaching $V/I\sim {\rm few}\times 10^{-5}(B_\parallel/10\,{\rm G})$. We discuss the detectability of these signals with current (SPIRou) and future (extremely large telescope) high-resolution infrared spectropolarimeters, and we briefly comment on possible sources of astrophysical contamination.

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Cited by 2 Pith papers

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

  1. Discovering and Characterising Exoplanets and Ultracool Dwarfs with the Square Kilometre Array

    astro-ph.EP 2026-07 conditional novelty 4.5 of 10

    SKA is projected to deliver the first exoplanet radio detections, thousands of UCD radio sources, and Earth-mass planets via VLBI astrometry around radio-loud UCDs.

  2. Discovering and Characterising Exoplanets and Ultracool Dwarfs with the Square Kilometre Array

    astro-ph.EP 2026-07 unverdicted novelty 2.5 of 10

    The Square Kilometre Array is projected to enable first radio detections of giant exoplanets, thousands of ultracool dwarfs, and few-Earth-mass planets around nearby UCDs via VLBI astrometry.

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