Spectropolarimetry of the superwind filaments of the starburst galaxy M82: kinematics of dust outflow
arXiv:1012.1503 · doi:10.1093/pasj/63.sp2.S493
Abstract
Spectropolarimetry results for the starburst galaxy M82 are presented. The optical emission lines of the filaments in the energetic outflow ("superwind") from the nuclear starburst region of M82 are substantially polarized. The H-alpha polarization degrees and angles measured by our study are consistent with previous narrowband imaging polarimetry data. The polarized emission lines are redshifted with respect to the emission lines in the total light and systemic motion of the galaxy. The emission line intensity ratios [NII]/H-alpha and [SII]/H-alpha in the polarized light are similar to those of the nuclear star-forming region. In addition, the electron density N_e derived from the[SII]6731/6717 line ratio of the polarized light is 600 - 1000 cm^-3 at a distance of more than 1 kpc from the nucleus, whereas the N_e derived from the total light are less than 300 cm^-3. These facts strongly suggest that the emission from the nuclear starburst of M82 is scattered by dust grains entrained and transported outward by the superwind. A simple hollow biconical outflow model shows that the velocity of the outflowing dust grains, v_d, ranges from 100 to 200 km/s near the nucleus, decreases monotonically with the distance from the nucleus, and reaches about 10 km/s at around 1 kpc. The motion of the dust is substantially slower than that of both ionized gas (~600 km/s) and molecular gas (~200 km/s) at the same distance from the nucleus of M82. This indicates that dust grains in the superwind are kinematically decoupled from both gas components at large radii. Since the dust velocity v_d is much less than the escape velocity of M82 (~170 km/s at 1.5 kpc from the nucleus), most of the dust entrained by the superwind cannot escape to intergalactic space, and may fall back into the galaxy disk without any additional acceleration mechanisms (such as radiation pressure).
12 pages, 10 figures, submitted to PASJ
References in corpus (7)
- Iron line and diffuse hard X-ray emission from the starburst galaxy M82
- Extended Mid-Infrared Aromatic Feature Emission in M 82
- A deep X-ray observation of M82 with XMM-Newton
- Neutral Hydrogen Clouds in the M81/M82 Group
- Warm Molecular Hydrogen in the Galactic Wind of M82
- Hubble Space Telescope ACS mosaic of the prototypical starburst galaxy M82
- Spatially Resolved Spitzer-IRS Spectroscopy of the Central Region of M82
Cited by in corpus (20)
- Cool Outflows in Galaxies and their Implications
- The Interstellar dust properties of nearby galaxies
- Structure and Feedback in 30 Doradus II. Structure and Chemical Abundances
- A Review of Recent Observations of Galactic Winds Driven by Star Formation
- Spectroscopic FIR mapping of the disk and galactic wind of M82 with Herschel-PACS
- AKARI near-infrared spectroscopy of the aromatic and aliphatic hydrocarbon emission features in the galactic superwind of M 82
- Dust entrainment in galactic winds
- A panchromatic analysis of starburst galaxy M82: Probing the dust properties
- Hard X-Ray to Radio Multiwavelength SED Analysis of Local U/LIRGs in GOALS Sample with Self-consistent AGN Model Including Polar-dust Component
- Ultraviolet Halos Around Spiral Galaxies. I. Morphology
- Spatio-kinematical model of the collimated molecular outflow in the water-fountain nebula IRAS 16342-3814
- Spectropolarimetry of the superwind filaments of the starburst galaxy M82 II: kinematics of the dust surrounding the nuclear starburst
- Charge exchange emission and cold clumps in multi-phase galactic outflows
- The Slow Flow Model of Dust Efflux in Local Star-Forming Galaxies
- X-ray supernova remnants in the starburst region of M82
- Enhanced dust emissivity power-law index along the western H filament of NGC 1569
- Chemical evolution of galaxies with radiation-driven dust wind
- Shocked POststarburst Galaxy Survey. IV. Outflows in Shocked Post-Starburst Galaxies Are Not Responsible For Quenching
- Ionization Source of a Minor-axis Cloud in the Outer Halo of M82
- Near-infrared Integral-field Spectroscopy of the Wind Forming Region of CW Leo