Vanishing Refractories: Tracing Dust Evolution in the BP Tau Protoplanetary Disk

Fuente: arXiv
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Autori principali: Micolta, Marbely, Svarc, Justin, Calvet, Nuria, Manzo-Martinez, Ezequiel, Thanathibodee, Thanawuth, C, Gladis Magris, Littwiller, Avalon
Natura: Preprint
Pubblicazione: 2025
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author Micolta, Marbely
Svarc, Justin
Calvet, Nuria
Manzo-Martinez, Ezequiel
Thanathibodee, Thanawuth
C, Gladis Magris
Littwiller, Avalon
author_facet Micolta, Marbely
Svarc, Justin
Calvet, Nuria
Manzo-Martinez, Ezequiel
Thanathibodee, Thanawuth
C, Gladis Magris
Littwiller, Avalon
contents We present a multi-wavelength analysis of the dust of BP Tau's protoplanetary disk. We use new optical spectra of BP Tau, taken with the Magellan/MIKE spectrograph in tandem with archival UV and mid-infrared observations. We use the magnetospheric accretion model to analyze the Ca II K and Mg II 2796.4 Å emission lines and derive the abundance of Ca and Mg in the accretion flows as a proxy for the refractory abundance in the innermost gas disk. Furthermore, we used irradiated accretion disk models to compare the spectral energy distribution (SED) to observations and model in detail the 10$μ$m and 20$μ$m silicate features to obtain the spatial distribution and stoichiometry of the dust in which the refractories are locked in the disk. We find a significant degree of depletion of refractory material in the innermost gas disk with median abundances of $\rm [Ca/H] = -2.0^{+0.1}_{-0.0}$ and $\rm [Mg/H] = -1.30^{+0.2}_{-0.3}$ and attribute this to both radial drift and dust trapping due to a pressure bump/gap. Our SED modeling recovers the inner cavity that extends up to 8 AU, consistent with sub-mm observations. We found a significant decrease of the Mg-to-Fe ratio with decreasing radius, with Mg-rich silicates in the outer wall and Fayalite in the inner wall, consistent with the Mg depletion inferred from the emission lines.
format Preprint
id arxiv_https___arxiv_org_abs_2509_13549
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Vanishing Refractories: Tracing Dust Evolution in the BP Tau Protoplanetary Disk
Micolta, Marbely
Svarc, Justin
Calvet, Nuria
Manzo-Martinez, Ezequiel
Thanathibodee, Thanawuth
C, Gladis Magris
Littwiller, Avalon
Earth and Planetary Astrophysics
We present a multi-wavelength analysis of the dust of BP Tau's protoplanetary disk. We use new optical spectra of BP Tau, taken with the Magellan/MIKE spectrograph in tandem with archival UV and mid-infrared observations. We use the magnetospheric accretion model to analyze the Ca II K and Mg II 2796.4 Å emission lines and derive the abundance of Ca and Mg in the accretion flows as a proxy for the refractory abundance in the innermost gas disk. Furthermore, we used irradiated accretion disk models to compare the spectral energy distribution (SED) to observations and model in detail the 10$μ$m and 20$μ$m silicate features to obtain the spatial distribution and stoichiometry of the dust in which the refractories are locked in the disk. We find a significant degree of depletion of refractory material in the innermost gas disk with median abundances of $\rm [Ca/H] = -2.0^{+0.1}_{-0.0}$ and $\rm [Mg/H] = -1.30^{+0.2}_{-0.3}$ and attribute this to both radial drift and dust trapping due to a pressure bump/gap. Our SED modeling recovers the inner cavity that extends up to 8 AU, consistent with sub-mm observations. We found a significant decrease of the Mg-to-Fe ratio with decreasing radius, with Mg-rich silicates in the outer wall and Fayalite in the inner wall, consistent with the Mg depletion inferred from the emission lines.
title Vanishing Refractories: Tracing Dust Evolution in the BP Tau Protoplanetary Disk
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2509.13549