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KAOSS: turbulent, but disc-like kinematics in dust-obscured star-forming galaxies at <i>z</i> ∼ 1.3–2.6

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KAOSS: turbulent, but disc-like kinematics in dust-obscured star-forming galaxies at <i>z</i> ∼ 1.3–2.6. / Birkin, Jack E; Puglisi, A; Swinbank, A M et al.
In: Monthly Notices of the Royal Astronomical Society, 23.04.2024.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Birkin, JE, Puglisi, A, Swinbank, AM, Smail, I, An, FX, Chapman, SC, Chen, C-C, Conselice, CJ, Dudzevičiūtė, U, Farrah, D, Gullberg, B, Matsuda, Y, Schinnerer, E, Scott, D, Wardlow, JL & van der Werf, P 2024, 'KAOSS: turbulent, but disc-like kinematics in dust-obscured star-forming galaxies at <i>z</i> ∼ 1.3–2.6', Monthly Notices of the Royal Astronomical Society. https://doi.org/10.1093/mnras/stae1089

APA

Birkin, J. E., Puglisi, A., Swinbank, A. M., Smail, I., An, F. X., Chapman, S. C., Chen, C.-C., Conselice, C. J., Dudzevičiūtė, U., Farrah, D., Gullberg, B., Matsuda, Y., Schinnerer, E., Scott, D., Wardlow, J. L., & van der Werf, P. (2024). KAOSS: turbulent, but disc-like kinematics in dust-obscured star-forming galaxies at <i>z</i> ∼ 1.3–2.6. Monthly Notices of the Royal Astronomical Society. Advance online publication. https://doi.org/10.1093/mnras/stae1089

Vancouver

Birkin JE, Puglisi A, Swinbank AM, Smail I, An FX, Chapman SC et al. KAOSS: turbulent, but disc-like kinematics in dust-obscured star-forming galaxies at <i>z</i> ∼ 1.3–2.6. Monthly Notices of the Royal Astronomical Society. 2024 Apr 23. Epub 2024 Apr 23. doi: 10.1093/mnras/stae1089

Author

Birkin, Jack E ; Puglisi, A ; Swinbank, A M et al. / KAOSS: turbulent, but disc-like kinematics in dust-obscured star-forming galaxies at <i>z</i> ∼ 1.3–2.6. In: Monthly Notices of the Royal Astronomical Society. 2024.

Bibtex

@article{34576934b5ee47f6abf2ada751108687,
title = "KAOSS: turbulent, but disc-like kinematics in dust-obscured star-forming galaxies at z ∼ 1.3–2.6",
abstract = "We present spatially resolved kinematics of 27 ALMA-identified dust-obscured star-forming galaxies (DSFGs) at z ∼ 1.3–2.6, as traced by Hα emission using VLT/KMOS near-infrared integral field spectroscopy from the “KMOS-ALMA Observations of Submillimetre Sources” (KAOSS) Large Programme. We derive Hα rotation curves and velocity dispersion profiles for the DSFGs, and find that among the 27 sources with bright, spatially extended Hα emission, 24 display evidence for disc-like kinematics. We measure a median inclination-corrected velocity at 2.2 Rd of vrot = 190 ± 40 km s−1 and intrinsic velocity dispersion of σ0 = 87 ± 6 km s−1 for these disc-like sources. The kinematics yield median circular velocities of vcirc = 230 ± 20 km s−1 and dynamical masses within 2Re (∼ 7 kpc radius) of Mdyn = (1.1 ± 0.2) × 1011 M⊙. Compared to less actively star-forming galaxies, KAOSS DSFGs are both faster rotating with higher intrinsic velocity dispersions, but have similar vrot/σ0 ratios, median v/σ0 = 2.5 ± 0.5. We suggest that the kinematics of the DSFGs are primarily rotation supported but with a non-negligible contribution from pressure support, which may be driven by star formation or mergers/interactions. We estimate the normalisation of the stellar mass Tully-Fisher relation (sTFR) for the disc-like DSFGs and compare it with local studies, finding no evolution at fixed slope between z ∼ 2 and z ∼ 0. Finally, we show that the kinematic properties of the DSFG population are consistent with them evolving into massive early-type galaxies, the dominant z ∼ 0 population at these masses.",
author = "Birkin, {Jack E} and A Puglisi and Swinbank, {A M} and Ian Smail and An, {Fang Xia} and Chapman, {S C} and Chian-Chou Chen and Conselice, {C J} and U Dudzevi{\v c}iūtė and D Farrah and B Gullberg and Y Matsuda and E Schinnerer and D Scott and Wardlow, {J L} and {van der Werf}, P",
year = "2024",
month = apr,
day = "23",
doi = "10.1093/mnras/stae1089",
language = "English",
journal = "Monthly Notices of the Royal Astronomical Society",
issn = "0035-8711",
publisher = "OXFORD UNIV PRESS",

}

RIS

TY - JOUR

T1 - KAOSS: turbulent, but disc-like kinematics in dust-obscured star-forming galaxies at z ∼ 1.3–2.6

AU - Birkin, Jack E

AU - Puglisi, A

AU - Swinbank, A M

AU - Smail, Ian

AU - An, Fang Xia

AU - Chapman, S C

AU - Chen, Chian-Chou

AU - Conselice, C J

AU - Dudzevičiūtė, U

AU - Farrah, D

AU - Gullberg, B

AU - Matsuda, Y

AU - Schinnerer, E

AU - Scott, D

AU - Wardlow, J L

AU - van der Werf, P

PY - 2024/4/23

Y1 - 2024/4/23

N2 - We present spatially resolved kinematics of 27 ALMA-identified dust-obscured star-forming galaxies (DSFGs) at z ∼ 1.3–2.6, as traced by Hα emission using VLT/KMOS near-infrared integral field spectroscopy from the “KMOS-ALMA Observations of Submillimetre Sources” (KAOSS) Large Programme. We derive Hα rotation curves and velocity dispersion profiles for the DSFGs, and find that among the 27 sources with bright, spatially extended Hα emission, 24 display evidence for disc-like kinematics. We measure a median inclination-corrected velocity at 2.2 Rd of vrot = 190 ± 40 km s−1 and intrinsic velocity dispersion of σ0 = 87 ± 6 km s−1 for these disc-like sources. The kinematics yield median circular velocities of vcirc = 230 ± 20 km s−1 and dynamical masses within 2Re (∼ 7 kpc radius) of Mdyn = (1.1 ± 0.2) × 1011 M⊙. Compared to less actively star-forming galaxies, KAOSS DSFGs are both faster rotating with higher intrinsic velocity dispersions, but have similar vrot/σ0 ratios, median v/σ0 = 2.5 ± 0.5. We suggest that the kinematics of the DSFGs are primarily rotation supported but with a non-negligible contribution from pressure support, which may be driven by star formation or mergers/interactions. We estimate the normalisation of the stellar mass Tully-Fisher relation (sTFR) for the disc-like DSFGs and compare it with local studies, finding no evolution at fixed slope between z ∼ 2 and z ∼ 0. Finally, we show that the kinematic properties of the DSFG population are consistent with them evolving into massive early-type galaxies, the dominant z ∼ 0 population at these masses.

AB - We present spatially resolved kinematics of 27 ALMA-identified dust-obscured star-forming galaxies (DSFGs) at z ∼ 1.3–2.6, as traced by Hα emission using VLT/KMOS near-infrared integral field spectroscopy from the “KMOS-ALMA Observations of Submillimetre Sources” (KAOSS) Large Programme. We derive Hα rotation curves and velocity dispersion profiles for the DSFGs, and find that among the 27 sources with bright, spatially extended Hα emission, 24 display evidence for disc-like kinematics. We measure a median inclination-corrected velocity at 2.2 Rd of vrot = 190 ± 40 km s−1 and intrinsic velocity dispersion of σ0 = 87 ± 6 km s−1 for these disc-like sources. The kinematics yield median circular velocities of vcirc = 230 ± 20 km s−1 and dynamical masses within 2Re (∼ 7 kpc radius) of Mdyn = (1.1 ± 0.2) × 1011 M⊙. Compared to less actively star-forming galaxies, KAOSS DSFGs are both faster rotating with higher intrinsic velocity dispersions, but have similar vrot/σ0 ratios, median v/σ0 = 2.5 ± 0.5. We suggest that the kinematics of the DSFGs are primarily rotation supported but with a non-negligible contribution from pressure support, which may be driven by star formation or mergers/interactions. We estimate the normalisation of the stellar mass Tully-Fisher relation (sTFR) for the disc-like DSFGs and compare it with local studies, finding no evolution at fixed slope between z ∼ 2 and z ∼ 0. Finally, we show that the kinematic properties of the DSFG population are consistent with them evolving into massive early-type galaxies, the dominant z ∼ 0 population at these masses.

U2 - 10.1093/mnras/stae1089

DO - 10.1093/mnras/stae1089

M3 - Journal article

JO - Monthly Notices of the Royal Astronomical Society

JF - Monthly Notices of the Royal Astronomical Society

SN - 0035-8711

ER -