The Empirical and Radiative Transfer Hybrid (EaRTH) Disk Model: Merging Analyses of Protoplanetary Dust Disk Mineralogy and Structure

Fuente: arXiv
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Main Authors: Grimble, William, Kastner, Joel, Pinte, Christophe, Sargent, Beth, Principe, David A., Dickson-Vandervelde, Annie, Aguayo, Aurora Belen, Caceres, Claudio, Schreiber, Matthias R., Stassun, Keivan G.
Format: Preprint
Published: 2024
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author Grimble, William
Kastner, Joel
Pinte, Christophe
Sargent, Beth
Principe, David A.
Dickson-Vandervelde, Annie
Aguayo, Aurora Belen
Caceres, Claudio
Schreiber, Matthias R.
Stassun, Keivan G.
author_facet Grimble, William
Kastner, Joel
Pinte, Christophe
Sargent, Beth
Principe, David A.
Dickson-Vandervelde, Annie
Aguayo, Aurora Belen
Caceres, Claudio
Schreiber, Matthias R.
Stassun, Keivan G.
contents Our understanding of how exoplanets form and evolve relies on analyses of both the mineralogy of protoplanetary disks and their detailed structures; however, these key complementary aspects of disks are usually studied separately. We present initial results from a hybrid model that combines the empirical characterization of the mineralogy of a disk, as determined from its mid-infrared spectral features, with the MCFOST radiative transfer disk model, a combination we call the EaRTH Disk Model. With the results of the mineralogy detection serving as input to the radiative transfer model, we generate mid-infrared spectral energy distributions (SEDs) that reflect both the mineralogical and structural parameters of the corresponding disk. Initial fits of the SED output by the resulting integrated model to Spitzer Space T elescope mid-infrared (IRS) spectra of the protoplanetary disk orbiting the nearby T Tauri star MP Mus demonstrate the potential advantages of this approach by revealing details like the dominance of micron-sized olivine and micron-sized forsterite in this dusty disk. The simultaneous insight into disk composition and structure provided by the EaRTH Disk methodology should be directly applicable to the interpretation of mid-infrared spectra of protoplanetary disks that will be produced by the James Webb Space Telescope.
format Preprint
id arxiv_https___arxiv_org_abs_2405_11061
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The Empirical and Radiative Transfer Hybrid (EaRTH) Disk Model: Merging Analyses of Protoplanetary Dust Disk Mineralogy and Structure
Grimble, William
Kastner, Joel
Pinte, Christophe
Sargent, Beth
Principe, David A.
Dickson-Vandervelde, Annie
Aguayo, Aurora Belen
Caceres, Claudio
Schreiber, Matthias R.
Stassun, Keivan G.
Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
Our understanding of how exoplanets form and evolve relies on analyses of both the mineralogy of protoplanetary disks and their detailed structures; however, these key complementary aspects of disks are usually studied separately. We present initial results from a hybrid model that combines the empirical characterization of the mineralogy of a disk, as determined from its mid-infrared spectral features, with the MCFOST radiative transfer disk model, a combination we call the EaRTH Disk Model. With the results of the mineralogy detection serving as input to the radiative transfer model, we generate mid-infrared spectral energy distributions (SEDs) that reflect both the mineralogical and structural parameters of the corresponding disk. Initial fits of the SED output by the resulting integrated model to Spitzer Space T elescope mid-infrared (IRS) spectra of the protoplanetary disk orbiting the nearby T Tauri star MP Mus demonstrate the potential advantages of this approach by revealing details like the dominance of micron-sized olivine and micron-sized forsterite in this dusty disk. The simultaneous insight into disk composition and structure provided by the EaRTH Disk methodology should be directly applicable to the interpretation of mid-infrared spectra of protoplanetary disks that will be produced by the James Webb Space Telescope.
title The Empirical and Radiative Transfer Hybrid (EaRTH) Disk Model: Merging Analyses of Protoplanetary Dust Disk Mineralogy and Structure
topic Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2405.11061