Publication:
Comparison of Hα and UV star formation rates in the local volume: systematic discrepancies for dwarf galaxies

Loading...
Thumbnail Image
Full text at PDC
Publication Date
2009-11-20
Advisors (or tutors)
Editors
Journal Title
Journal ISSN
Volume Title
Publisher
American Astronomical Society
Citations
Google Scholar
Research Projects
Organizational Units
Journal Issue
Abstract
Using a complete sample of ~300 star-forming galaxies within 11 Mpc of the Milky Way, we evaluate the consistency between star formation rates (SFRs) inferred from the far ultraviolet (FUV) non-ionizing continuum and Hα nebular emission, assuming standard conversion recipes in which the SFR scales linearly with luminosity at a given wavelength. Our analysis probes SFRs over 5 orders of magnitude, down to ultra-low activities on the order of ~10^–4 M_☉ yr^–1. The data are drawn from the 11 Mpc Hα and Ultraviolet Galaxy Survey (11HUGS), which has obtained Hα fluxes from ground-based narrowband imaging, and UV fluxes from imaging with GALEX. For normal spiral galaxies (SFR ~ 1 M_☉ yr^–1), our results are consistent with previous work which has shown that FUV SFRs tend to be lower than Hα SFRs before accounting for internal dust attenuation, but that there is relative consistency between the two tracers after proper corrections are applied. However, a puzzle is encountered at the faint end of the luminosity function. As lower luminosity dwarf galaxies, roughly less active than the Small Magellanic Cloud, are examined, Hα tends to increasingly underpredict the total SFR relative to the FUV. The trend is evident prior to corrections for dust attenuation, which affects the FUV more than the nebular Hα emission, so this general conclusion is robust to the effects of dust. Although past studies have suggested similar trends, this is the first time this effect is probed with a statistical sample for galaxies with SFR ≤0.1 M_☉ yr^–1. By SFR ~ 0.003 M_☉ yr–1, the average Hα-to-FUV flux ratio is lower than expected by a factor of two, and at the lowest SFRs probed, the ratio exhibits an order of magnitude discrepancy for the handful of galaxies that remain in the sample. A range of standard explanations does not appear to be able to fully account for the magnitude of the systematic. Some recent work has argued for a stellar initial mass function which is deficient in high-mass stars in dwarf and low surface brightness galaxies, and we also consider this scenario. Under the assumption that the FUV traces the SFR in dwarf galaxies more robustly, the prescription relating Hα luminosity to SFR is re-calibrated for use in the low SFR regime when FUV data are not available.
Description
© 2009. The American Astronomical Society. All rights reserved. Artículo firmado por 17 autores. J. C. L. thanks the astronomers at Carnegie Observatories, in particular Alan Dressler, Luis Ho, Andy McWilliam, and Steve Schechtman, for helpful conversations over the course of this work. Support for J. C. L. has been provided by NASA through Hubble Fellowship grant HST-HF-01198 awarded by the Space Telescope Science Institute, which is operated by the Association of Universities for Research in Astronomy, Inc., for NASA, under contract NAS5-26555. A.G.dP. acknowledges partial support from the Spanish Ramón y Cajal program and the Programa Nacional de Astronomía y Astrofísica under grant AYA 2006-02358. C. A. T. thanks the Alexander von Humboldt Foundation for their generous support. This research has made use of the NASA/IPAC Extragalactic Database (NED) which is operated by the Jet Propulsion Laboratory, California Institute of Technology, under contract with the National Aeronautics and Space Administration. Some of the data presented in this paper were obtained from the Multimission Archive at the Space Telescope Science Institute (MAST). Support for MAST for non-HST data is provided by the NASA Office of Space Science via grant NAG5-7584 and by other grants and contract.
Unesco subjects
Keywords
Citation
Begum, A., et al. 2008, MNRAS, 386, 1667 Bell, E. F., & Kennicutt, R. C. 2001, ApJ, 548, 681 Bergvall, N., et al. 2006, A&A, 448, 513 Bigiel, F., Leroy, A., Walter, F., Brinks, E., de Blok, W. J. G., Madore, B., & Thornley, M. D. 2008, AJ, 136, 2846 Boissier, S., et al. 2007, ApJS, 173, 524 Bothwell, M., Kennicutt, R. C., & Lee, J. C. 2009, MNRAS, in press (arXiv:0908.1122) Brinchmann, J., et al. 2004, MNRAS, 351, 1151 Bruzual, G., & Charlot, S. 2003, MNRAS, 344, 1000 Buat, V. 1992, A&A, 264, 444 Buat, V., Boselli, A., Gavazzi, G., & Bonfanti, C. 2002, A&A, 383, 801 Buat, V., Donas, J., & Deharveng, J. M. 1987, A&A, 185, 33 Buat, V., et al. 2005, ApJ, 619, L51 Calzetti, D. 2001, PASP, 113, 1449 Calzetti, D., Kinney, A. L., & Storchi-Bergmann, T. 1994, ApJ, 429, 582 Calzetti, D., et al. 2009, ApJ, submitted Cardelli, J. A., Clayton, G. C., & Mathis, J. S. 1989, ApJ, 345, 245 Cerviño, M., & Luridiana, V. 2004, A&A, 413, 145 Cerviño, M., & Valls-Gabaud, D. 2003, MNRAS, 338, 481 Cerviño, M., et al. 2003, A&A, 407, 177 Chabrier, G. 2003, PASP, 115, 763 Cortese, L., et al. 2006, ApJ, 637, 242 Croxall, K., van Zee, L., Lee, H., Skillman, E., Lee, Janice, C., Cote, S., Kennicutt, R. C., & Miller, B. 2009, ApJ, 705, 723 Dale, D. A., & Helou, G. 2002, ApJ, 576, 159 Dale, D. A., & The LVL Team, 2009, ApJ, 703, 517 de Vaucouleurs, G., de Vaucouleurs, A., Corwin, H. G., Buta, R. J., Paturel, G., & Fouqué, R. 1991, Third Reference Catalogue of Bright Galaxies (Berlin: Springer-Verlag) Dohm-Palmer, R. C., et al. 1998, AJ, 116, 1227 Dopita, M. A., Periera, L., Kewley, L. J., & Capacciolo, M. 2002, ApJS, 143, 47 Fioc, M, & Rocca-Volmerange, B. 1997, A&A, 326, 950 Gallart, C., Zoccali, M., & Aparicio, A. 2005, ARA&A, 43, 387 Gil de Paz, A., et al. 2007, ApJS, 173, 185 Girardi, L., et al. 1996, A&AS, 117, 113 Grimes, J. P., et al. 2007, ApJ, 668, 891 Hirashita, H., Buat, V., & Inoue, A. K. 2003, A&A, 410, 83 Hoversten, E. A., & Glazebrook, K. 2008, ApJ, 675, 163 Hunter, D. A., & Elmegreen, B. G. 2004, AJ, 128, 2170 Iglesias Páramo, J., Boselli, A., Gavazzi, G., & Zaccardo, A. 2004, A&A, 421, 887 Jansen, R. A., Franx, M., Fabricant, D., & Caldwell, N. 2000, ApJS, 126, 271 Kennicutt, R. C. 1998, ARA&A, 36, 189 Kennicutt, R. C., Lee, J. C., Funes, J. G., Sakai, S., & Akiyama, S. 2008, ApJS, 178, 247 (Paper I) Kennicutt, R. C., et al. 2009, ApJ, 703, 1672 Kewley, L. J., Geller, M. J., Jansen, R. A., & Dopita, M. A. 2002, AJ, 124, 3135 Kong, X., Charlot, S., Brinchmann, J., & Fall, S. M. 2004, MNRAS, 349, 769 Köppen, J., Weidner, C., & Kroupa, P. 2007, MNRAS, 375, 673 Kroupa, P. 2001, MNRAS, 322, 231 Kroupa, P., & Weidner, C. 2003, ApJ, 598, 1076 Kunth, D., & Ostlin, G. 2000, A&AR, 10, 1 Lee, J. C. 2006, PhD thesis, Univ. Arizona Lee, J. C., Kennicutt, R. C., Funes, J. G., Sakai, S., & Akiyama, S. 2007, ApJ, 671, L113 Lee, J. C., Kennicutt, R. C., Funes, J. G., Sakai, S., & Akiyama, S. 2009, ApJ, 692, 1305 Lee, H., McCall, M. L., Kingsburgh, R. L., Ross, R., & Stevenson, C. C. 2003, AJ, 125, 146 Lee, J. C., Salzer, J. J., Impey, C., Thuan, T. X., & Gronwall, C. 2002, AJ, 124, 3088 Lee, J. C., Salzer, J. J., & Melbourne, J. 2004, ApJ, 616, 752 Lee, J. C., et al. 2008, in ASP Conf. Ser. 396, Formation and Evolution of Galaxy Disks, ed. J. G. Funes, S. J., & E. M. Corsini (San Francisco, CA: ASP), 151 Leitherer, C. 2008, in IAU Symp. 255, Low-Metallicity Star Formation: From the First Stars to Dwarf Galaxies, ed. L. K. Hunt, S. C. Madden, & R. Schneider (Dordrecht: Kluwer), 305 Leitherer, C., Ferguson, H. C., Heckman, T. M., & Lowenthal, J. D. 1995, ApJ, 454, 19 Leitherer, C., et al. 1999, ApJS, 123, 3 Marble, A., et al. 2009, ApJ, submitted Martin, D. C., et al. 2005, ApJ, 619, L1 McQuinn, K. B. W., Skillman, E. D., Cannon, J. M., Dalcanton, J. J., Dolphin, A., Stark, D., & Weisz, D. 2009, ApJ, 695, 561 Meurer, G. R., Heckman, T. M., & Calzetti, D. 1999, ApJ, 521, 64 Meurer, G. R., et al. 2006, ApJS, 165, 307 Meurer, G. R., et al. 2009, ApJ, 695, 765 Morrissey, P., et al. 2005, ApJ, 619, L7 Morrissey, P., et al. 2007, ApJS, 173, 682 Moustakas, J., & Kennicutt, R. C. 2006, ApJS, 164, 81 Moustakas, J., Kennicutt, R. C., & Tremonti, C. A. 2006, ApJ, 642, 775 Oey, M. S., et al. 2007, ApJ, 661, 801 Osterbrock, D. 1989, Astrophysics of Gaseous Nebulae and Active Galactic Nuclei (Mill Valley, CA: University Science Books) Pflamm-Altenburg, J., Weidner, C., & Kroupa, P. 2007, ApJ, 671, 1550 Pflamm-Altenburg, J., Weidner, C., & Kroupa, P. 2009, MNRAS, 395, 394 Salim, S., et al. 2007, ApJS, 173, 267 Schaerer, D., Meynet, G, Maeder, A., & Schaller, G. 1993, A&AS, 98, 523 Schlegel, D. J., Finkbeiner, D. P., & Davis, M. 1998, ApJ, 500, 525 Seibert, M., et al. 2005, ApJ, 619, L55 Siana, B., et al. 2007, ApJ, 668, 62 Sullivan, M., Treyer, M. A., Ellis, R. S., Bridges, T. J., Milliard, B., & Donas, J. 2000, MNRAS, 312, 442 Sullivan, M., Treyer, M. A., Ellis, R. S., & Mobasher, B. 2004, MNRAS, 350, 21 Thilker, D. A., et al. 2007, ApJS, 173, 538 Tremonti, C. A., Lee, J. C., van Zee, L., Kennicutt, R., Sakai, S., Funes, J., & Akiyama, S. 2007, AAS, 211, 9503 Tully, R. B. 1988, Nearby Galaxies Catalog (Cambridge: Cambridge University Press) Weidner, C., & Kroupa, P. 2005, ApJ, 625, 754 Weidner, C., & Kroupa, P. 2006, MNRAS, 365, 1333 Weisz, D., Skillman, E., Cannon, J., Dolphin, A., Kennicutt, R., Lee, J. C., & Walter, F. 2008, ApJ, 689, 160
Collections