Fast and Slow Rotators in the Densest Environments: a SWIFT IFS study of the Coma Cluster

ArXiv 1308.6581 (2013)

Authors:

RCW Houghton, Roger L Davies, F D'Eugenio, N Scott, N Thatte, F Clarke, M Tecza, GS Salter, LMR Fogarty, T Goodsall

Abstract:

We present integral-field spectroscopy of 27 galaxies in the Coma cluster observed with the Oxford SWIFT spectrograph, exploring the kinematic morphology-density relationship in a cluster environment richer and denser than any in the ATLAS3D survey. Our new data enables comparison of the kinematic morphology relation in three very different clusters (Virgo, Coma and Abell 1689) as well as to the field/group environment. The Coma sample was selected to match the parent luminosity and ellipticity distributions of the early-type population within a radius 15' (0.43 Mpc) of the cluster centre, and is limited to r' = 16 mag (equivalent to M_K = -21.5 mag), sampling one third of that population. From analysis of the lambda-ellipticity diagram, we find 15+-6% of early-type galaxies are slow rotators; this is identical to the fraction found in the field and the average fraction in the Virgo cluster, based on the ATLAS3D data. It is also identical to the average fraction found recently in Abell 1689 by D'Eugenio et al.. Thus it appears that the average slow rotator fraction of early type galaxies remains remarkably constant across many different environments, spanning five orders of magnitude in galaxy number density. However, within each cluster the slow rotators are generally found in regions of higher projected density, possibly as a result of mass segregation by dynamical friction. These results provide firm constraints on the mechanisms that produce early-type galaxies: they must maintain a fixed ratio between the number of fast rotators and slow rotators while also allowing the total early-type fraction to increase in clusters relative to the field. A complete survey of Coma, sampling hundreds rather than tens of galaxies, could probe a more representative volume of Coma and provide significantly stronger constraints, particularly on how the slow rotator fraction varies at larger radii.

Detecting highly-dispersed bursts with next-generation radio telescopes

(2013)

Authors:

TE Hassall, EF Keane, RP Fender

Broadband monitoring tracing the evolution of the jet and disk in the black hole candidate X-ray binary MAXI J1659-152

(2013)

Authors:

AJ van der Horst, PA Curran, JCA Miller-Jones, JD Linford, J Gorosabel, DM Russell, A de Ugarte Postigo, AA Lundgren, GB Taylor, D Maitra, S Guziy, TM Belloni, C Kouveliotou, PG Jonker, A Kamble, Z Paragi, J Homan, E Kuulkers, J Granot, D Altamirano, MM Buxton, A Castro-Tirado, RP Fender, MA Garrett, N Gehrels, DH Hartmann, JA Kennea, HA Krimm, V Mangano, E Ramirez-Ruiz, P Romano, RAMJ Wijers, R Wijnands, YJ Yang

A statistical analysis of circumstellar material in Type Ia supernovae

(2013)

Authors:

Kate Maguire, Mark Sullivan, Ferdinando Patat, Avishay Gal-Yam, Isobel M Hook, Suhail Dhawan, D Andrew Howell, Paolo Mazzali, Peter E Nugent, Yen-Chen Pan, Philipp Podsiadlowski, Joshua D Simon, Assaf Sternberg, Stefano Valenti, Charles Baltay, David Bersier, Nadejda Blagorodnova, Ting-Wan Chen, Nancy Ellman, Ulrich Feindt, Francisco Förster, Morgan Fraser, Santiago González-Gaitán, Melissa L Graham, Claudia Gutiérrez, Stephan Hachinger, Elena Hadjiyska, Cosimo Inserra, Cristina Knapic, RR Laher, Giorgos Leloudas, Steven Margheim, Ryan McKinnon, Marco Molinaro, Nidia Morrell, Eran O Ofek, David Rabinowitz, Armin Rest, David Sand, Riccardo Smareglia, Stephen J Smartt, Francesco Taddia, Emma S Walker, Nicholas A Walton, David R Young

A statistical analysis of circumstellar material in Type Ia supernovae

ArXiv 1308.3899 (2013)

Authors:

Kate Maguire, Mark Sullivan, Ferdinando Patat, Avishay Gal-Yam, Isobel M Hook, Suhail Dhawan, D Andrew Howell, Paolo Mazzali, Peter E Nugent, Yen-Chen Pan, Philipp Podsiadlowski, Joshua D Simon, Assaf Sternberg, Stefano Valenti, Charles Baltay, David Bersier, Nadejda Blagorodnova, Ting-Wan Chen, Nancy Ellman, Ulrich Feindt, Francisco Förster, Morgan Fraser, Santiago González-Gaitán, Melissa L Graham, Claudia Gutiérrez, Stephan Hachinger, Elena Hadjiyska, Cosimo Inserra, Cristina Knapic, RR Laher, Giorgos Leloudas, Steven Margheim, Ryan McKinnon, Marco Molinaro, Nidia Morrell, Eran O Ofek, David Rabinowitz, Armin Rest, David Sand, Riccardo Smareglia, Stephen J Smartt, Francesco Taddia, Emma S Walker, Nicholas A Walton, David R Young

Abstract:

A key tracer of the elusive progenitor systems of Type Ia supernovae (SNe Ia) is the detection of narrow blueshifted time-varying Na I D absorption lines, interpreted as evidence of circumstellar material (CSM) surrounding the progenitor system. The origin of this material is controversial, but the simplest explanation is that it results from previous mass loss in a system containing a white dwarf and a non-degenerate companion star. We present new single-epoch intermediate-resolution spectra of 17 low-redshift SNe Ia taken with XShooter on the ESO Very Large Telescope. Combining this sample with events from the literature, we confirm an excess (~20 per cent) of SNe Ia displaying blueshifted narrow Na I D absorption features compared to non-blueshifted Na I D features. The host galaxies of SNe Ia displaying blueshifted absorption profiles are skewed towards later-type galaxies, compared to SNe Ia that show no Na I D absorption, and SNe Ia displaying blueshifted narrow Na I D absorption features have broader light curves. The strength of the Na I D absorption is stronger in SNe Ia displaying blueshifted Na I D absorption features than those without blueshifted features, and the strength of the blueshifted Na I D is correlated with the B-V colour of the SN at maximum light. This strongly suggests the absorbing material is local to the SN. In the context of the progenitor systems of SNe Ia, we discuss the significance of these findings and other recent observational evidence on the nature of SN Ia progenitors. We present a summary that suggests there are at least two distinct populations of normal, cosmologically useful SNe Ia.