Mapping atmospheric features of the planetary-mass brown dwarf SIMP 0136 with JWST NIRISS

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Main Authors: Akhmetshyn, Roman, Artigau, Etienne, Cowan, Nicolas B., Plummer, Michael K., Wang, Fei, Burningham, Ben, Benneke, Bjorn, Doyon, Rene, Jayawardhana, Ray, Lafreniere, David, Metchev, Stanimir A., Rowe, Jason F.
Format: Preprint
Published: 2025
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author Akhmetshyn, Roman
Artigau, Etienne
Cowan, Nicolas B.
Plummer, Michael K.
Wang, Fei
Burningham, Ben
Benneke, Bjorn
Doyon, Rene
Jayawardhana, Ray
Lafreniere, David
Metchev, Stanimir A.
Rowe, Jason F.
author_facet Akhmetshyn, Roman
Artigau, Etienne
Cowan, Nicolas B.
Plummer, Michael K.
Wang, Fei
Burningham, Ben
Benneke, Bjorn
Doyon, Rene
Jayawardhana, Ray
Lafreniere, David
Metchev, Stanimir A.
Rowe, Jason F.
contents In this paper, we analyze James Webb Space Telescope Near Infrared Imager and Slitless Spectrograph time-series spectroscopy data to characterize the atmosphere of the planetary-mass brown dwarf SIMP J01365662+093347. Principal component analysis reveals that 81\% of spectral variations can be described by two components, implying that variability within a single rotational phase is induced by at least three distinct spectral regions. By comparing our data to a grid of Sonora Diamondback atmospheric models, we confirm that the time-averaged spectrum cannot be explained by a single model but require a linear combination of at least three regions. Projecting these models onto the principal component plane shows that the overall variability is highly correlated with changes in temperature, cloud coverage, and possibly effective metallicity. We also extract brightness maps from the lightcurve and establish North-South asymmetry in the atmosphere. A combined multidimensional analysis of spectro-photometric variability links the three spectral regions to three atmospheric layers. Forsterite cloud and water abundance at each level form unique harmonics of atmospheric variability observed in different spectral bands. Atmospheric retrievals on the time-averaged spectrum are consistent with an optically thick iron cloud deck beneath a patchy forsterite cloud layer and with the overall adiabatic curve. We also demonstrate two new analysis methods: a regionally-resolved spectra retrieval that relies on multi-wavelength spherical harmonics maps, and a method to constrain brightness maps using Doppler information present in the spectra. Future observations of variable brown dwarfs of higher spectral resolution or spanning multiple rotations should help break mapping degeneracy.
format Preprint
id arxiv_https___arxiv_org_abs_2509_00149
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Mapping atmospheric features of the planetary-mass brown dwarf SIMP 0136 with JWST NIRISS
Akhmetshyn, Roman
Artigau, Etienne
Cowan, Nicolas B.
Plummer, Michael K.
Wang, Fei
Burningham, Ben
Benneke, Bjorn
Doyon, Rene
Jayawardhana, Ray
Lafreniere, David
Metchev, Stanimir A.
Rowe, Jason F.
Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
In this paper, we analyze James Webb Space Telescope Near Infrared Imager and Slitless Spectrograph time-series spectroscopy data to characterize the atmosphere of the planetary-mass brown dwarf SIMP J01365662+093347. Principal component analysis reveals that 81\% of spectral variations can be described by two components, implying that variability within a single rotational phase is induced by at least three distinct spectral regions. By comparing our data to a grid of Sonora Diamondback atmospheric models, we confirm that the time-averaged spectrum cannot be explained by a single model but require a linear combination of at least three regions. Projecting these models onto the principal component plane shows that the overall variability is highly correlated with changes in temperature, cloud coverage, and possibly effective metallicity. We also extract brightness maps from the lightcurve and establish North-South asymmetry in the atmosphere. A combined multidimensional analysis of spectro-photometric variability links the three spectral regions to three atmospheric layers. Forsterite cloud and water abundance at each level form unique harmonics of atmospheric variability observed in different spectral bands. Atmospheric retrievals on the time-averaged spectrum are consistent with an optically thick iron cloud deck beneath a patchy forsterite cloud layer and with the overall adiabatic curve. We also demonstrate two new analysis methods: a regionally-resolved spectra retrieval that relies on multi-wavelength spherical harmonics maps, and a method to constrain brightness maps using Doppler information present in the spectra. Future observations of variable brown dwarfs of higher spectral resolution or spanning multiple rotations should help break mapping degeneracy.
title Mapping atmospheric features of the planetary-mass brown dwarf SIMP 0136 with JWST NIRISS
topic Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2509.00149