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Phosphine Depletion in Brown Dwarf Atmospheres Explained due to Metal Phosphide Formation
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DOI:10.3847/2041-8213/ae606a.png)
Abstract
En 中文
Phosphine (PH3) is predicted to be the dominant phosphorus-bearing gas in cool substellar atmospheres, yet observations have revealed a puzzling pattern. While Jupiter and Saturn exhibit measurable PH3 abundances sustained by vertical mixing, most brown dwarfs show severe phosphine depletion. The recent detection of PH3 in two metal-poor brown dwarfs, contrasted with its absence in higher-metallicity counterparts, suggests a metallicity-controlled sequestration mechanism. The origin of this discrepancy has remained unresolved. Here, we show that PH3 is efficiently sequestered in metal-rich brown dwarf atmospheres through the formation of condensed metal phosphides. Through density functional theory calculations and atmospheric chemical equilibrium modeling, we demonstrate that phosphide-forming reactions under brown dwarf temperature-pressure conditions preferentially partition phosphorus into solid phases over gaseous PH3. This mechanism can explain the depletion of PH3 in higher-metallicity brown dwarfs, while its persistence in metal-poor cases reflects the reduced availability of condensing metals. In contrast, in giant planets like Jupiter and Saturn, Fe, Mg, and Ni condense deep below the photosphere into a (dilute) core, largely preventing phosphide formation from depleting atmospheric PH3. Our findings reveal that phosphine abundance is strongly coupled to metallicity and atmospheric condensation chemistry, providing a unified framework to interpret its distribution across substellar atmospheres. Finally, future work is needed to assess the impact of nonequilibrium effects such as kinetics.
Keywords:
GIANT PLANETS
CHEMISTRY
SPECTRUM
STELLAR
MODELS
CONDENSATION
TRANSITION
FASTCHEM
RAINOUT
STARS
Journal
IF:
11.7
Papers:
1.2W
Citations:
5.9W
