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MINDS survey of silicates in T Tauri disks: Correlation between dust and gas

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Context Silicates are key constituents of planet-forming disks and are among the most important building blocks of rocky planets. Mid-infrared spectral features of micron-sized silicate grains are powerful tracers of grain growth, mineralogy, and disk chemistry. Aims We characterized the dust mineralogy in T Tauri disks using James Webb Space Telescope (JWST)/Mid-Infrared Instrument (MIRI) observations. A further aim of ours was to investigate the connections between the dust and molecular gas compositions. Methods We analyzed JWST/MIRI spectra of 26 disks as part of the MIRI mid-Infrared Disk Survey (MINDS). We employed spectral decomposition with our new DustComp tool to derive the mass fractions of individual dust species. We included in our fits MgSiO₄ (forsterite), Mg₂SiO₃ (enstatite), and SiO₂ (silica) together with amorphous silicates of corresponding stoichiometry. Results We find that Mg-rich (and Fe-poor) silicates represent our data well. Fit residuals are typically within ±3%. Grain size distributions are skewed toward larger sizes (>2 μm), indicating significant growth. Large (similar to 5 μm-sized) amorphous Mg-silicates were robustly detected, whereas the presence of large crystalline grains could not be firmly established. The average dust composition is dominated by grains of Mg₂SiO₄ stoichiometry (similar to 60%, including amorphous and crystalline state), followed by MgSiO₃ (∼30%) and SiO₂ (∼10%). The mass fractions of crystalline grains are typically in the 5-24% range, with a mean of 14%. We robustly detected annealed silica in nine objects, with cristobalite as the main polymorph. We found a correlation between dust and molecular gas composition: disks with strong annealed silica features show relatively strong CO₂ emission, while forsterite-rich disks display stronger H₂O emission. Disks with annealed silica features may also have elevated gas-phase C/O ratios, suggesting a process, such as dust sublimation and recondensation, that establishes thermo-chemical equilibrium between solids and gas. Conclusions The correlation between dust and gas may provide the first indication that the molecular gas composition regulates the availability of dust species in the inner disk.

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Astrophysics and Star Formation StudiesAstro and Planetary ScienceHigh-pressure geophysics and materials

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