Rock vapour is opaque: implications for dynamics and observations of lava planets

Fuente: arXiv
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Main Authors: Nguyen, T. Giang, Cowan, Nicolas B., Gens, Gunnar Montseny, Boukare, Charles-Edouard, Eaton, William, Sienko, Karolina
Format: Preprint
Published: 2025
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_version_ 1866912710447333376
author Nguyen, T. Giang
Cowan, Nicolas B.
Gens, Gunnar Montseny
Boukare, Charles-Edouard
Eaton, William
Sienko, Karolina
author_facet Nguyen, T. Giang
Cowan, Nicolas B.
Gens, Gunnar Montseny
Boukare, Charles-Edouard
Eaton, William
Sienko, Karolina
contents Extreme instellation on lava planets causes the rocky surface to melt and vaporize. Because the rock vapour composition is intrinsically tied to the mantle, atmospheric characterization of lava planets can hold valuable insight into the interior processes of rocky planets. To help interpret current data and strategize for future observations, we develop the model SonicVapour to simulate the dynamics of chemically complex secondary atmosphere of lava planets. We find that for planets with surface temperatures exceeding 2700 K, the rock vapour outgassed is optically thick, making the atmosphere vertically isothermal thus suppressing convection and severely limiting atmospheric detection via emission spectroscopy. In contrast, cooler planets with surfaces between 2300 K - 2700 K have an atmospheric opacity close to 50% and produce distinct spectral features. Counter-intuitively, therefore, cooler lava planet atmospheres are easier to detect. Our results ultimately emphasize the importance of considering atmospheric "detectability" in tandem with signal-to-noise for future observation programs.
format Preprint
id arxiv_https___arxiv_org_abs_2511_11800
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Rock vapour is opaque: implications for dynamics and observations of lava planets
Nguyen, T. Giang
Cowan, Nicolas B.
Gens, Gunnar Montseny
Boukare, Charles-Edouard
Eaton, William
Sienko, Karolina
Earth and Planetary Astrophysics
Extreme instellation on lava planets causes the rocky surface to melt and vaporize. Because the rock vapour composition is intrinsically tied to the mantle, atmospheric characterization of lava planets can hold valuable insight into the interior processes of rocky planets. To help interpret current data and strategize for future observations, we develop the model SonicVapour to simulate the dynamics of chemically complex secondary atmosphere of lava planets. We find that for planets with surface temperatures exceeding 2700 K, the rock vapour outgassed is optically thick, making the atmosphere vertically isothermal thus suppressing convection and severely limiting atmospheric detection via emission spectroscopy. In contrast, cooler planets with surfaces between 2300 K - 2700 K have an atmospheric opacity close to 50% and produce distinct spectral features. Counter-intuitively, therefore, cooler lava planet atmospheres are easier to detect. Our results ultimately emphasize the importance of considering atmospheric "detectability" in tandem with signal-to-noise for future observation programs.
title Rock vapour is opaque: implications for dynamics and observations of lava planets
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2511.11800