Evidence for Systematically Larger Dust Grains in Upper Scorpius Relative to Taurus Disks

Fuente: arXiv
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Main Authors: Liu, Yao, Pascucci, Ilaria, Gao, Fei, Xie, Chengyan, Long, Feng, Carpenter, John, Pontoppidan, Klaus M., Banzatti, Andrea, Booth, Richard, Ertel, Steve, Fang, Min, Gorti, Uma, Molyarova, Tamara
Format: Preprint
Published: 2026
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author Liu, Yao
Pascucci, Ilaria
Gao, Fei
Xie, Chengyan
Long, Feng
Carpenter, John
Pontoppidan, Klaus M.
Banzatti, Andrea
Booth, Richard
Ertel, Steve
Fang, Min
Gorti, Uma
Molyarova, Tamara
author_facet Liu, Yao
Pascucci, Ilaria
Gao, Fei
Xie, Chengyan
Long, Feng
Carpenter, John
Pontoppidan, Klaus M.
Banzatti, Andrea
Booth, Richard
Ertel, Steve
Fang, Min
Gorti, Uma
Molyarova, Tamara
contents Infrared spectroscopy provides a powerful diagnostic for probing the mineralogical properties of dust grains in the terrestrial planet-forming regions of protoplanetary disks. The Upper Scorpius association offers an excellent laboratory for studying disk evolution because it represents an evolved stage (5-10 Myr) compared with younger star-forming regions such as the Taurus Molecular Cloud (1-3 Myr). In this work, we present mid-infrared spectra of 11 disks in Upper Scorpius that were obtained with the Mid-Infrared Instrument aboard the James Webb Space Telescope. We derive emission feature indices for crystalline olivine and pyroxene centered at about 9.2 micron and 11.1 micron, as well as perform spectral decomposition to quantify dust crystallinity and characteristic grain size. These results are compared with those measured from Spitzer/IRS spectra of 31 disks in Taurus with similar stellar types. We find no significant difference in dust crystallinity between the two groups, suggesting that crystallization is largely established at early stages of disk evolution. Our analysis indicates that the average grain size in Upper Scorpius disks is systematically larger than that in Taurus disks, aligning with theories of dust evolution. We also observe a trend of increasing grain size towards later-type stars, as well as a correlation between crystallinity, grain size and the flux ratio F24/F8, which serves as a measure of dust settling. These results suggest that dust processing proceeds in tandem with disk evolution.
format Preprint
id arxiv_https___arxiv_org_abs_2605_26736
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Evidence for Systematically Larger Dust Grains in Upper Scorpius Relative to Taurus Disks
Liu, Yao
Pascucci, Ilaria
Gao, Fei
Xie, Chengyan
Long, Feng
Carpenter, John
Pontoppidan, Klaus M.
Banzatti, Andrea
Booth, Richard
Ertel, Steve
Fang, Min
Gorti, Uma
Molyarova, Tamara
Earth and Planetary Astrophysics
Infrared spectroscopy provides a powerful diagnostic for probing the mineralogical properties of dust grains in the terrestrial planet-forming regions of protoplanetary disks. The Upper Scorpius association offers an excellent laboratory for studying disk evolution because it represents an evolved stage (5-10 Myr) compared with younger star-forming regions such as the Taurus Molecular Cloud (1-3 Myr). In this work, we present mid-infrared spectra of 11 disks in Upper Scorpius that were obtained with the Mid-Infrared Instrument aboard the James Webb Space Telescope. We derive emission feature indices for crystalline olivine and pyroxene centered at about 9.2 micron and 11.1 micron, as well as perform spectral decomposition to quantify dust crystallinity and characteristic grain size. These results are compared with those measured from Spitzer/IRS spectra of 31 disks in Taurus with similar stellar types. We find no significant difference in dust crystallinity between the two groups, suggesting that crystallization is largely established at early stages of disk evolution. Our analysis indicates that the average grain size in Upper Scorpius disks is systematically larger than that in Taurus disks, aligning with theories of dust evolution. We also observe a trend of increasing grain size towards later-type stars, as well as a correlation between crystallinity, grain size and the flux ratio F24/F8, which serves as a measure of dust settling. These results suggest that dust processing proceeds in tandem with disk evolution.
title Evidence for Systematically Larger Dust Grains in Upper Scorpius Relative to Taurus Disks
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2605.26736