ArXiv TLDR

The Effect of External Photoevaporation on the Disk Fraction in M17

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2604.15506

Samuel Millstone, Megan Reiter, Morten Andersen, Thomas J. Haworth, Dominika Itrich + 4 more

astro-ph.SRastro-ph.EPastro-ph.GA

TLDR

This paper investigates how external photoevaporation affects protoplanetary disk lifetimes in the M17 region, finding lower disk fractions in high UV environments.

Key contributions

  • Measured inner disk fraction in M17 as 28±2% using deep VLT/HAWK-I photometry, identifying 10,339 sources.
  • First X-ray-selected disk fraction in M17 including low-mass YSOs, enhancing understanding of disk evolution.
  • Found no correlation between disk fraction and UV flux within M17, likely due to dynamical mixing.
  • Comparing regions, higher UV fields correlate with lower disk fractions, suggesting external photoevaporation shortens disk lifetimes.

Why it matters

Understanding how environments influence protoplanetary disk lifetimes is crucial for planet formation models. This study provides a deep, high-resolution survey of M17, including low-mass YSOs, to better constrain the role of external photoevaporation. Its findings suggest that while local effects might be masked by dynamics, external UV fields generally decrease disk lifetimes.

Original Abstract

A major obstacle to improving models of planet formation is understanding how the local environment influences the lifetime of the disks in which they form. The spread in observed disk lifetimes is caused by effects both observational (e.g., target selection, survey sensitivity) and physical (e.g., disk destruction by internal and external photoevaporation); however, the degree to which each plays a role remains poorly constrained. Isolating the impact of external photoevaporation on the disk lifetime benefits from the inclusion of low-mass ($\lesssim0.5$ M$_{\odot}$) YSOs, for which this effect is most predominant. In this work, we measure the inner disk fraction from JHK excess in the ~6000 M$_{\odot}$, ~1 Myr-old star-forming region M17. Using VLT/HAWK-I, we perform a deep photometric survey of an ~8$^{\prime}\times$8$^{\prime}$ field towards the region. The ~4 times greater sensitivity and ~2-3 times higher resolution than previous surveys of M17 reveal 10,339 sources. We select cluster members using the Massive Young Star-Forming Complex Study in Infrared and X-ray (MYStIX) catalog and find a disk fraction of 28$\pm$2%: the first X-ray-selected disk fraction measurement in M17 to include low-mass YSOs, and only the second such measurement in any high-mass star-forming region. After correcting for observational biases, we find no correlation between disk fraction and incident UV flux within M17, likely due to dynamical mixing within the region. However, when compared to other regions of similar age, we find lower disk fractions in regions with higher UV fields, suggesting that external photoevaporation decreases the average disk lifetime.

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