Galaxy Zoo: Hanny's Voorwerp, a quasar light echo?

Monthly Notices of the Royal Astronomical Society 399:1 (2009) 129-140

Authors:

CJ Lintott, K Schawinski, W Keel, H Van Arkel, N Bennert, E Edmondson, D Thomas, DJB Smith, PD Herbert, MJ Jarvis, S Virani, D Andreescu, SP Bamford, K Land, P Murray, RC Nichol, MJ Raddick, AZ Slosar, A Szalay, J Vandenberg

Abstract:

We report the discovery of an unusual object near the spiral galaxy IC 2497, discovered by visual inspection of the Sloan Digital Sky Survey (SDSS) as part of the Galaxy Zoo project. The object, known as Hanny's Voorwerp, is bright in the SDSS g band due to unusually strong [O iii]4959, 5007 emission lines. We present the results of the first targeted observations of the object in the optical, ultraviolet and X-ray, which show that the object contains highly ionized gas. Although the line ratios are similar to extended emission-line regions near luminous active galactic nucleus (AGN), the source of this ionization is not apparent. The emission-line properties, and lack of X-ray emission from IC 2497, suggest either a highly obscured AGN with a novel geometry arranged to allow photoionization of the object but not the galaxy's own circumnuclear gas, or, as we argue, the first detection of a quasar light echo. In this case, either the luminosity of the central source has decreased dramatically or else the obscuration in the system has increased within 10 5 yr. This object may thus represent the first direct probe of quasar history on these time-scales. © 2009 RAS.

Galaxy Zoo: The dependence of morphology and colour on environment

Monthly Notices of the Royal Astronomical Society 393:4 (2009) 1324-1352

Authors:

SP Bamford, RC Nichol, IK Baldry, K Land, CJ Lintott, K Schawinski, A Slosar, AS Szalay, D Thomas, M Torki, D Andreescu, EM Edmondson, CJ Miller, P Murray, MJ Raddick, J Vandenberg

Abstract:

We analyse the relationships between galaxy morphology, colour, environment and stellar mass using data for over 105 objects from Galaxy Zoo, the largest sample of visually classified morphologies yet compiled. We conclusively show that colour and morphology fractions are very different functions of environment. Both colour and morphology are sensitive to stellar mass. However, at fixed stellar mass, while colour is also highly sensitive to environment, morphology displays much weaker environmental trends. Only a small part of both the morphology-density and colour-density relations can be attributed to the variation in the stellar-mass function with environment. Galaxies with high stellar masses are mostly red in all environments and irrespective of their morphology. Low stellar-mass galaxies are mostly blue in low-density environments, but mostly red in high-density environments, again irrespective of their morphology. While galaxies with early-type morphology do always have higher red fractions, this is subdominant compared to the dependence of red fraction on stellar mass and environment. The colour-density relation is primarily driven by variations in colour fractions at fixed morphology, in particular the fraction of spiral galaxies that have red colours, and especially at low stellar masses. We demonstrate that our red spirals primarily include galaxies with true spiral morphology, and that they constitute an additional population to the S0 galaxies considered by previous studies. We clearly show there is an environmental dependence for colour beyond that for morphology. The environmental transformation of galaxies from blue to red must occur on significantly shorter time-scales than the transformation from spiral to early-type. We also present many of our results as functions of the distance to the nearest galaxy group. This confirms that the environmental trends we present are not specific to the manner in which environment is quantified, but nevertheless provides plain evidence for an environmental process at work in groups. However, the properties of group members show little dependence on the total mass of the group they inhabit, at least for group masses. Before using the Galaxy Zoo morphologies to produce the above results, we first quantify a luminosity-, size- and redshift-dependent classification bias that affects this data set, and probably most other studies of galaxy population morphology. A correction for this bias is derived and applied to produce a sample of galaxies with reliable morphological-type likelihoods, on which we base our analysis. © 2009 RAS.

LSST: from Science Drivers to Reference Design and Anticipated Data Products

(2009)

Authors:

Z Ivezic, JA Tyson, B Abel, E Acosta, R Allsman, Y AlSayyad, SF Anderson, J Andrew, R Angel, G Angeli, R Ansari, P Antilogus, KT Arndt, P Astier, E Aubourg, T Axelrod, DJ Bard, JD Barr, A Barrau, JG Bartlett, BJ Bauman, S Beaumont, AC Becker, J Becla, C Beldica, S Bellavia, G Blanc, RD Blandford, JS Bloom, J Bogart, K Borne, JF Bosch, D Boutigny, WN Brandt, ME Brown, JS Bullock, P Burchat, DL Burke, G Cagnoli, D Calabrese, S Chandrasekharan, S Chesley, EC Cheu, J Chiang, CF Claver, AJ Connolly, KH Cook, A Cooray, KR Covey, C Cribbs, W Cui, R Cutri, G Daubard, G Daues, F Delgado, S Digel, P Doherty, R Dubois, GP Dubois-Felsmann, J Durech, M Eracleous, H Ferguson, J Frank, M Freemon, E Gangler, E Gawiser, JC Geary, P Gee, M Geha, RR Gibson, DK Gilmore, T Glanzman, I Goodenow, WJ Gressler, P Gris, A Guyonnet, PA Hascall, J Haupt, F Hernandez, C Hogan, D Huang, ME Huffer, WR Innes, SH Jacoby, B Jain, J Jee, JG Jernigan, D Jevremovic, K Johns, RL Jones, C Juramy-Gilles, M Juric, SM Kahn, JS Kalirai, N Kallivayalil, B Kalmbach, JP Kantor, MM Kasliwal, R Kessler, D Kirkby, L Knox, I Kotov, VL Krabbendam, S Krughoff, P Kubanek, J Kuczewski, S Kulkarni, R Lambert, LL Guillou, D Levine, M Liang, K-T Lim, C Lintott, RH Lupton, A Mahabal, P Marshall, S Marshall, M May, R McKercher, M Migliore, M Miller, DJ Mills, DG Monet, M Moniez, DR Neill, J-Y Nief, A Nomerotski, M Nordby, P O'Connor, J Oliver, SS Olivier, K Olsen, S Ortiz, RE Owen, R Pain, JR Peterson, CE Petry, F Pierfederici, S Pietrowicz, R Pike, PA Pinto, R Plante, S Plate, PA Price, M Prouza, V Radeka, J Rajagopal, A Rasmussen, N Regnault, ST Ridgway, S Ritz, W Rosing, C Roucelle, MR Rumore, S Russo, A Saha, B Sassolas, TL Schalk, RH Schindler, DP Schneider, G Schumacher, J Sebag, GH Sembroski, LG Seppala, I Shipsey, N Silvestri, JA Smith, RC Smith, MA Strauss, CW Stubbs, D Sweeney, A Szalay, P Takacs, JJ Thaler, RV Berg, DV Berk, K Vetter, F Virieux, B Xin, L Walkowicz, CW Walter, DL Wang, M Warner, B Willman, D Wittman, SC Wolff, WM Wood-Vasey, P Yoachim, H Zhan, FTLSST Collaboration

Abstract:

(Abridged) We describe here the most ambitious survey currently planned in the optical, the Large Synoptic Survey Telescope (LSST). A vast array of science will be enabled by a single wide-deep-fast sky survey, and LSST will have unique survey capability in the faint time domain. The LSST design is driven by four main science themes: probing dark energy and dark matter, taking an inventory of the Solar System, exploring the transient optical sky, and mapping the Milky Way. LSST will be a wide-field ground-based system designed to obtain multiple images covering the sky visible from Cerro Pach\'{o}n in northern Chile. The telescope will have an 8.4 m (6.5 m effective) primary mirror, a 9.6 deg$^2$ field of view, and a 3.2 Gigapixel camera. This system can image about 10,000 square degrees of sky in three clear nights using pairs of 15-second exposures twice per night, with typical 5$\sigma$ depth for point sources of $r\sim24.5$ (AB). The project is in the construction phase and will begin regular survey operations by 2022. The survey area will be contained within 30,000 deg$^2$ with $\delta<+34.5^\circ$, and will be imaged multiple times in six bands, $ugrizy$, covering the wavelength range 320--1050 nm. About 90\% of the observing time will be devoted to a deep-wide-fast survey mode which will uniformly observe a 18,000 deg$^2$ region about 800 times (summed over all six bands) during the anticipated 10 years of operations, and yield a coadded map to $r\sim27.5$. The remaining 10\% of the observing time will be allocated to projects such as a Very Deep and Fast time domain survey. The goal is to make LSST data products, including a relational database of about 32 trillion observations of 40 billion objects, available to the public and scientists around the world.

Tracing high density gas in M 82 and NGC 4038

The Astropysical Journal Letters (2008)

Authors:

E Bayet, C Lintott, S Viti, J Martín-Pintado, S Martín, DA Williams, JMC Rawlings

Abstract:

We present the first detection of CS in the Antennae galaxies towards the NGC 4038 nucleus, as well as the first detections of two high-J (5-4 and 7-6) CS lines in the center of M 82. The CS(7-6) line in M 82 shows a profile that is surprisingly different to those of other low-J CS transitions we observed. This implies the presence of a separate, denser and warmer molecular gas component. The derived physical properties and the likely location of the CS(7-6) emission suggests an association with the supershell in the centre of M 82.

Galaxy Zoo : Morphologies derived from visual inspection of galaxies from the Sloan Digital Sky Survey

Mon.Not.Roy.Astron.Soc. 389 (2008) 1179-1189

Authors:

CJ Lintott, K Schawinski, A Slosar, K Land, S Bamford, D Thomas, MJ Raddick, RC Nichol, A Szalay, D Andreescu, P Murray, JVD Berg

Abstract:

In order to understand the formation and subsequent evolution of galaxies one must first distinguish between the two main morphological classes of massive systems: spirals and early-type systems. This paper introduces a project, Galaxy Zoo, which provides visual morphological classifications for nearly one million galaxies, extracted from the Sloan Digital Sky Survey (SDSS). This achievement was made possible by inviting the general public to visually inspect and classify these galaxies via the internet. The project has obtained more than 40,000,000 individual classifications made by ~100,000 participants. We discuss the motivation and strategy for this project, and detail how the classifications were performed and processed. We find that Galaxy Zoo results are consistent with those for subsets of SDSS galaxies classified by professional astronomers, thus demonstrating that our data provides a robust morphological catalogue. Obtaining morphologies by direct visual inspection avoids introducing biases associated with proxies for morphology such as colour, concentration or structual parameters. In addition, this catalogue can be used to directly compare SDSS morphologies with older data sets. The colour--magnitude diagrams for each morphological class are shown, and we illustrate how these distributions differ from those inferred using colour alone as a proxy for morphology.