Sulfur Dioxide and Other Molecular Species in the Atmosphere of the Sub-Neptune GJ 3470 b

Fuente: arXiv
Gespeichert in:
Bibliographische Detailangaben
Hauptverfasser: Beatty, Thomas G., Welbanks, Luis, Schlawin, Everett, Bell, Taylor J., Line, Michael R., Murphy, Matthew, Edelman, Isaac, Greene, Thomas P., Fortney, Jonathan J., Henry, Gregory W., Mukherjee, Sagnick, Ohno, Kazumasa, Parmentier, Vivien, Rauscher, Emily, Wiser, Lindsey S., Arnold, Kenneth E.
Format: Preprint
Veröffentlicht: 2024
Schlagworte:
Online-Zugang:
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
_version_ 1866909218664087552
author Beatty, Thomas G.
Welbanks, Luis
Schlawin, Everett
Bell, Taylor J.
Line, Michael R.
Murphy, Matthew
Edelman, Isaac
Greene, Thomas P.
Fortney, Jonathan J.
Henry, Gregory W.
Mukherjee, Sagnick
Ohno, Kazumasa
Parmentier, Vivien
Rauscher, Emily
Wiser, Lindsey S.
Arnold, Kenneth E.
author_facet Beatty, Thomas G.
Welbanks, Luis
Schlawin, Everett
Bell, Taylor J.
Line, Michael R.
Murphy, Matthew
Edelman, Isaac
Greene, Thomas P.
Fortney, Jonathan J.
Henry, Gregory W.
Mukherjee, Sagnick
Ohno, Kazumasa
Parmentier, Vivien
Rauscher, Emily
Wiser, Lindsey S.
Arnold, Kenneth E.
contents We report observations of the atmospheric transmission spectrum of the sub-Neptune exoplanet GJ 3470 b taken using the Near-Infrared Camera (NIRCam) on JWST. Combined with two archival HST/WFC3 transit observations and fifteen archival Spitzer transit observations, we detect water, methane, sulfur dioxide, and carbon dioxide in the atmosphere of GJ 3470 b, each with a significance of >3-sigma. GJ 3470 b is the lowest mass -- and coldest -- exoplanet known to show a substantial sulfur dioxide feature in its spectrum, at $M_{p}$=11.2${\,{\rm M}_{\oplus}}$ and $T_{eq}$=600$\,$K. This indicates disequilibrium photochemistry drives sulfur dioxide production in exoplanet atmospheres over a wider range of masses and temperatures than has been reported or expected. The water, carbon dioxide, and sulfur dioxide abundances we measure indicate an atmospheric metallicity of approximately $100\times$ Solar. We see further evidence for disequilibrium chemistry in our inferred methane abundance, which is significantly lower than expected from equilibrium models consistent with our measured water and carbon dioxide abundances.
format Preprint
id arxiv_https___arxiv_org_abs_2406_04450
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Sulfur Dioxide and Other Molecular Species in the Atmosphere of the Sub-Neptune GJ 3470 b
Beatty, Thomas G.
Welbanks, Luis
Schlawin, Everett
Bell, Taylor J.
Line, Michael R.
Murphy, Matthew
Edelman, Isaac
Greene, Thomas P.
Fortney, Jonathan J.
Henry, Gregory W.
Mukherjee, Sagnick
Ohno, Kazumasa
Parmentier, Vivien
Rauscher, Emily
Wiser, Lindsey S.
Arnold, Kenneth E.
Earth and Planetary Astrophysics
We report observations of the atmospheric transmission spectrum of the sub-Neptune exoplanet GJ 3470 b taken using the Near-Infrared Camera (NIRCam) on JWST. Combined with two archival HST/WFC3 transit observations and fifteen archival Spitzer transit observations, we detect water, methane, sulfur dioxide, and carbon dioxide in the atmosphere of GJ 3470 b, each with a significance of >3-sigma. GJ 3470 b is the lowest mass -- and coldest -- exoplanet known to show a substantial sulfur dioxide feature in its spectrum, at $M_{p}$=11.2${\,{\rm M}_{\oplus}}$ and $T_{eq}$=600$\,$K. This indicates disequilibrium photochemistry drives sulfur dioxide production in exoplanet atmospheres over a wider range of masses and temperatures than has been reported or expected. The water, carbon dioxide, and sulfur dioxide abundances we measure indicate an atmospheric metallicity of approximately $100\times$ Solar. We see further evidence for disequilibrium chemistry in our inferred methane abundance, which is significantly lower than expected from equilibrium models consistent with our measured water and carbon dioxide abundances.
title Sulfur Dioxide and Other Molecular Species in the Atmosphere of the Sub-Neptune GJ 3470 b
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2406.04450