Refractory phosphorus in the HD 100546 protoplanetary disk

Fuente: arXiv
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Main Authors: Kama, Mihkel, Shorttle, Oliver, Borthakur, Sandipan P. D., Keyte, Luke, Bergner, Jennifer B., Fossati, Luca, Folsom, Colin P., Ramler, Heleri
Format: Preprint
Published: 2025
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author Kama, Mihkel
Shorttle, Oliver
Borthakur, Sandipan P. D.
Keyte, Luke
Bergner, Jennifer B.
Fossati, Luca
Folsom, Colin P.
Ramler, Heleri
author_facet Kama, Mihkel
Shorttle, Oliver
Borthakur, Sandipan P. D.
Keyte, Luke
Bergner, Jennifer B.
Fossati, Luca
Folsom, Colin P.
Ramler, Heleri
contents The phosphorus budget of planets is intertwined with their formation history and is thought to influence their habitability. The chemical reservoirs and volatile \emph{vs} refractory budget of phosphorus in planet-forming environments have so far eluded empirical characterisation. We employ high-resolution spectra from HST/STIS in the ultraviolet and APEX in the sub-mm to constrain the phosphorus budget in the well-characterized HD\,100546 star and protoplanetary disk system. We measure $\log{(P/H)_{\star}}=-7.50^{+0.23}_{-0.28}$ on the stellar surface, which traces the total inventory of P in accreting gas \emph{and }dust from the inner disk. The inner disk gas, inside of the main dust trap, has $\log{(P/H)_{\rm in}}\lesssim-8.70$, and the outer disk gas $\log{(P/H)_{\rm out}}\lesssim-9.30$. Phosphorus in the disk is carried by a relatively refractory reservoir, consistent with minerals such as apatite or schreibersite, or with ammonium phosphate salts, in terms of sublimation temperature. We discuss the impact this might have on the two protoplanets around HD\,100546. Our results contribute to our understanding of the chemical habitability of planetary systems and lay a foundation for future explorations, especially in the context of JWST and \emph{Ariel} which can study phosphorus in exoplanet atmospheres.
format Preprint
id arxiv_https___arxiv_org_abs_2504_14228
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Refractory phosphorus in the HD 100546 protoplanetary disk
Kama, Mihkel
Shorttle, Oliver
Borthakur, Sandipan P. D.
Keyte, Luke
Bergner, Jennifer B.
Fossati, Luca
Folsom, Colin P.
Ramler, Heleri
Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
The phosphorus budget of planets is intertwined with their formation history and is thought to influence their habitability. The chemical reservoirs and volatile \emph{vs} refractory budget of phosphorus in planet-forming environments have so far eluded empirical characterisation. We employ high-resolution spectra from HST/STIS in the ultraviolet and APEX in the sub-mm to constrain the phosphorus budget in the well-characterized HD\,100546 star and protoplanetary disk system. We measure $\log{(P/H)_{\star}}=-7.50^{+0.23}_{-0.28}$ on the stellar surface, which traces the total inventory of P in accreting gas \emph{and }dust from the inner disk. The inner disk gas, inside of the main dust trap, has $\log{(P/H)_{\rm in}}\lesssim-8.70$, and the outer disk gas $\log{(P/H)_{\rm out}}\lesssim-9.30$. Phosphorus in the disk is carried by a relatively refractory reservoir, consistent with minerals such as apatite or schreibersite, or with ammonium phosphate salts, in terms of sublimation temperature. We discuss the impact this might have on the two protoplanets around HD\,100546. Our results contribute to our understanding of the chemical habitability of planetary systems and lay a foundation for future explorations, especially in the context of JWST and \emph{Ariel} which can study phosphorus in exoplanet atmospheres.
title Refractory phosphorus in the HD 100546 protoplanetary disk
topic Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2504.14228