Accretion Burst Crystallizes Silicates in a Planet-Forming Disk
Abstract
Crystalline silicates form at high temperatures (> 900 K; Fabian et al. 2000; Hallenbeck et al. 1998). Their presence in comets (Hanner et al. 1994; Hayward et al. 2000; Wooden et al. 2002; Shinnaka et al. 2018) suggests that high-temperature dust processing occurred in the early Solar System and was subsequently transported outward to comet-forming regions. However, direct evidence for this crystallization and redistribution in Sun-like protostars has remained elusive. By comparing James Webb Space Telescope (JWST) mid-infrared spectra of the periodically bursting protostar EC 53 (Lee et al. 2020), we detect crystalline silicate (forsterite and enstatite) emission features that appear only during the burst. The emergence of these features indicates active crystal formation via thermal annealing in the hot inner disk during the accretion burst. We also detect a nested outflow-a collimated atomic jet enclosed by slower molecular outflows, consistent with magnetohydrodynamic (MHD) wind models (Pascucci et al. 2025). This configuration provides a mechanism for outward transport of freshly crystallized silicates (Giacalone et al. 2019). Our results provide the first direct observational evidence of in-situ silicate crystallization during episodic accretion bursts in a very young star still embedded in its dense envelope. Although we do not directly detect grains transported to the outer disk, the observed trends are consistent with outward redistribution, indicating that both dust processing and transport occur during the earliest and most dynamic stages of star formation.
Cite
@article{arxiv.2607.27765,
title = {Accretion Burst Crystallizes Silicates in a Planet-Forming Disk},
author = {Jeong-Eun Lee and Chul-Hwan Kim and Jaeyeong Kim and Seokho Lee and Young-Jun Kim and Seonjae Lee and Giseon Baek and Joel D. Green and Gregory J. Herczeg and Doug Johnstone and Klaus M. Pontoppidan and Yuri Aikawa and Yao-Lun Yang and Logan Francis and Mihwa Jin and Hyerin Jang},
journal= {arXiv preprint arXiv:2607.27765},
year = {2026}
}
Comments
33 pages, 12 figures, 1 table, This is the author accepted manuscript of an article published in Nature. The final published version is available at this https URL (https://www.nature.com/articles/s41586-025-09939-3)