The Radcliffe Wave is Oscillating
arXiv:2402.12596 · doi:10.1038/s41586-024-07127-3
Abstract
Our Sun lies within 300 pc of the 2.7-kpc-long sinusoidal chain of dense gas clouds known as the Radcliffe Wave. The structure's wave-like shape was discovered using 3D dust mapping, but initial kinematic searches for oscillatory motion were inconclusive. Here we present evidence that the Radcliffe Wave is oscillating through the Galactic plane while also drifting radially away from the Galactic Center. We use measurements of line-of-sight velocity for 12CO and 3D velocities of young stellar clusters to show that the most massive star-forming regions spatially associated with the Radcliffe Wave (including Orion, Cepheus, North America, and Cygnus X) move as if they are part of an oscillating wave driven by the gravitational acceleration of the Galactic potential. By treating the Radcliffe Wave as a coherently oscillating structure, we can derive its motion independently of the local Galactic mass distribution, and directly measure local properties of the Galactic potential as well as the Sun's vertical oscillation period. In addition, the measured drift of the Radcliffe Wave radially outward from the Galactic Center suggests that the cluster whose supernovae ultimately created today's expanding Local Bubble may have been born in the Radcliffe Wave.
Published in Nature on 20 February 2024. For data, interactive visualizations, and more information see https://sites.google.com/cfa.harvard.edu/radcliffewave
References in corpus (20)
- The Gaia mission
- galpy: A Python Library for Galactic Dynamics
- The mass distribution and gravitational potential of the Milky Way
- Trigonometric Parallaxes Of High-Mass Star Forming Regions: Our View Of The Milky Way
- Painting a portrait of the Galactic disc with its stellar clusters
- APOGEE Data and Spectral Analysis from SDSS Data Release 16: Seven Years of Observations Including First Results from APOGEE-South
- Improving the open cluster census. II. An all-sky cluster catalogue with Gaia DR3
- A Large Catalog of Accurate Distances to Local Molecular Clouds: The Gaia DR2 Edition
- Rings and Radial Waves in the Disk of the Milky Way
- A catalog of newly identified star clusters in GAIA DR2
- A Compendium of Distances to Molecular Clouds in the Star Formation Handbook
- Star formation near the Sun is driven by expansion of the Local Bubble
- A Galactic-scale gas wave in the Solar Neighborhood
- Dark Matter as a Trigger for Periodic Comet Impacts
- Newly detected open clusters in the Galactic disk using Gaia EDR3
- The Per-Tau Shell: A Giant Star-Forming Spherical Shell Revealed by 3D Dust Observations
- Momentum feedback from marginally-resolved HII regions in isolated disc galaxies
- Evidence of a vertical kinematic oscillation beyond the Radcliffe Wave
- Discovery of a coherent, wave-like velocity pattern for the Radcliffe Wave
- Characterizing the 3D Kinematics of Young Stars in the Radcliffe Wave