Probing the Physics of Dusty Outflows through Complex Organic Molecules in the Early Universe
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arXiv
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| Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , |
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| Formato: | Preprint |
| Publicado: |
2025
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| author | Vayner, Andrey Díaz-Santos, Tanio Ferkinhoff, Carl D. Eisenhardt, Peter R. M. Stern, Daniel Armus, Lee Hensley, Brandon S. Anglés-Alcázar, Daniel Assef, Roberto J. Aranda, Román Fernández Blain, Andrew W. Jun, Hyunsung D. Murray, Norman W. Wright, Shelley Tsai, Chao-Wei Lai, Thomas Roy, Niranjan Chandra Brisbin, Drew Aravena, Manuel González-López, Jorge Li, Guodong Liao, Mai Shobhana, Devika Wu, Jingwen Zewdie, Dejene |
| author_facet | Vayner, Andrey Díaz-Santos, Tanio Ferkinhoff, Carl D. Eisenhardt, Peter R. M. Stern, Daniel Armus, Lee Hensley, Brandon S. Anglés-Alcázar, Daniel Assef, Roberto J. Aranda, Román Fernández Blain, Andrew W. Jun, Hyunsung D. Murray, Norman W. Wright, Shelley Tsai, Chao-Wei Lai, Thomas Roy, Niranjan Chandra Brisbin, Drew Aravena, Manuel González-López, Jorge Li, Guodong Liao, Mai Shobhana, Devika Wu, Jingwen Zewdie, Dejene |
| contents | Galaxy-scale outflows are of critical importance for galaxy formation and evolution. Dust grains are the main sites for the formation of molecules needed for star formation but are also important for the acceleration of outflows that can remove the gas reservoir critical for stellar mass growth. Using the MIRI medium-resolution integral field spectrograph aboard the James Webb Space Telescope (JWST), we detect the 3.28 $μ$m aromatic and the 3.4 $μ$m aliphatic hydrocarbon dust features in absorption in a redshift 4.601 hot dust-obscured galaxy, blue-shifted by $Δ$V=$-5250^{+276}_{-339}$ kms$^{-1}$ from the systemic redshift of the galaxy. The extremely high velocity of the dust indicates that the wind was accelerated by radiation pressure from the central quasar. These results pave a novel way for probing the physics of dusty outflows in active galaxies at early cosmic time. |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2510_09870 |
| institution | arXiv |
| publishDate | 2025 |
| record_format | arxiv |
| spellingShingle | Probing the Physics of Dusty Outflows through Complex Organic Molecules in the Early Universe Vayner, Andrey Díaz-Santos, Tanio Ferkinhoff, Carl D. Eisenhardt, Peter R. M. Stern, Daniel Armus, Lee Hensley, Brandon S. Anglés-Alcázar, Daniel Assef, Roberto J. Aranda, Román Fernández Blain, Andrew W. Jun, Hyunsung D. Murray, Norman W. Wright, Shelley Tsai, Chao-Wei Lai, Thomas Roy, Niranjan Chandra Brisbin, Drew Aravena, Manuel González-López, Jorge Li, Guodong Liao, Mai Shobhana, Devika Wu, Jingwen Zewdie, Dejene Astrophysics of Galaxies Galaxy-scale outflows are of critical importance for galaxy formation and evolution. Dust grains are the main sites for the formation of molecules needed for star formation but are also important for the acceleration of outflows that can remove the gas reservoir critical for stellar mass growth. Using the MIRI medium-resolution integral field spectrograph aboard the James Webb Space Telescope (JWST), we detect the 3.28 $μ$m aromatic and the 3.4 $μ$m aliphatic hydrocarbon dust features in absorption in a redshift 4.601 hot dust-obscured galaxy, blue-shifted by $Δ$V=$-5250^{+276}_{-339}$ kms$^{-1}$ from the systemic redshift of the galaxy. The extremely high velocity of the dust indicates that the wind was accelerated by radiation pressure from the central quasar. These results pave a novel way for probing the physics of dusty outflows in active galaxies at early cosmic time. |
| title | Probing the Physics of Dusty Outflows through Complex Organic Molecules in the Early Universe |
| topic | Astrophysics of Galaxies |
| url | https://arxiv.org/abs/2510.09870 |