The SuperCOSMOS all-sky galaxy catalogue

Monthly Notices of the Royal Astronomical Society Oxford University Press 462:2 (2016) 2085-2098

Authors:

JA Peacock, NC Hambly, M Bilicki, HT MacGillivray, Lance Miller, MA Read, SB Tritton

Abstract:

We describe the construction of an all-sky galaxy catalogue, using SuperCOSMOS scans of Schmidt photographic plates from theUKSchmidt Telescope and Second Palomar Observatory Sky Survey. The photographic photometry is calibrated using Sloan Digital Sky Survey data, with results that are linear to 2 per cent or better. All-sky photometric uniformity is achieved by matching plate overlaps and also by requiring homogeneity in optical-to-2MASS colours, yielding zero-points that are uniform to 0.03 mag or better. The typical AB depths achieved are BJ < 21, RF < 19.5 and IN < 18.5, with little difference between hemispheres. In practice, the IN plates are shallower than the BJ and RF plates, so for most purposes we advocate the use of a catalogue selected in these two latter bands. At high Galactic latitudes, this catalogue is approximately 90 per cent complete with 5 per cent stellar contamination; we quantify how the quality degrades towards the Galactic plane. At low latitudes, there are many spurious galaxy candidates resulting from stellar blends: these approximately match the surface density of true galaxies at |b| = 30°. Above this latitude, the catalogue limited in BJ and RF contains in total about 20 million galaxy candidates, of which 75 per cent are real. This contamination can be removed, and the sky coverage extended, by matching with additional data sets. This SuperCOSMOS catalogue has been matched with 2MASS and with WISE, yielding quasiall- sky samples of respectively 1.5 million and 18.5 million galaxies, to median redshifts of 0.08 and 0.20. This legacy data set thus continues to offer a valuable resource for large-angle cosmological investigations.

CFHTLenS and RCSLenS cross-correlation with Planck lensing detected in fourier and configuration space

Monthly Notices of the Royal Astronomical Society 460:1 (2016) 434-457

Authors:

J Harnois-Déraps, T Tröster, A Hojjati, L van Waerbeke, M Asgari, A Choi, T Erben, C Heymans, H Hildebrandt, TD Kitching, L Miller, R Nakajima, M Viola, S Arnouts, J Coupon, T Moutard

Survey strategy optimization for the Atacama Cosmology Telescope

Proceedings of SPIE--the International Society for Optical Engineering SPIE, the international society for optics and photonics (2016) 991017-991017-14

Authors:

F De Bernardis, JR Stevens, M Hasselfield, D Alonso, JR Bond, E Calabrese, SK Choi, KT Crowley, M Devlin, J Dunkley, PA Gallardo, SW Henderson, M Hilton, R Hlozek, SP Ho, K Huffenberger, BJ Koopman, A Kosowsky, T Louis, MS Madhavacheril, J McMahon, S Næss, F Nati, L Newburgh, MD Niemack, LA Page, M Salatino, A Schillaci, BL Schmitt, N Sehgal, JL Sievers, SM Simon, DN Spergel, ST Staggs, A van Engelen, EM Vavagiakis, EJ Wollack

Bursty star formation feedback and cooling outflows

(2016)

Authors:

Teresita Suarez, Andrew Pontzen, Hiranya V Peiris, Adrianne Slyz, Julien Devriendt

The milky way project and atlasgal: The distribution and physical properties of cold clumps near infrared bubbles

Astrophysical Journal 825:2 (2016)

Authors:

S Kendrew, H Beuther, R Simpson, T Csengeri, M Wienen, CJ Lintott, MS Povich, C Beaumont, F Schuller

Abstract:

© 2016. The American Astronomical Society. All rights reserved. We present a statistical study of the distribution and physical properties of cold, dense material in and around the inner Galactic Plane near-infrared bubbles as cataloged by the Milky Way Project citizen scientists. Using data from the Atacama Pathfinder Experiment (APEX) Telescope Large Area Survey of the Galaxy 870 μm survey, we show that 48 ± 2% of all cold clumps in the studied survey region (|l| ≤ 65°, |b| ≤ 1°) are found in close proximity to a bubble, and 25 ± 2% appear directly projected toward a bubble rim. A two-point correlation analysis confirms the strong correlation of massive cold clumps with expanding bubbles. It shows an overdensity of clumps along bubble rims that grows with increasing bubble size, which shows how interstellar medium material is reordered on large scales by bubble expansion around regions of massive star formation. The highest column density clumps appear to be resistent to the expansion, remaining overdense toward the bubbles' interior rather than being swept up by the expanding edge. Spectroscopic observations in ammonia show that cold dust clumps near bubbles appear to be denser, hotter, and more turbulent than those in the field, offering circumstantial evidence that bubble-associated clumps are more likely to be forming stars. These observed differences in physical conditions persist beyond the region of the bubble rims.