A DEEP PROPER MOTION CATALOG WITHIN THE SLOAN DIGITAL SKY SURVEY FOOTPRINT. II. THE WHITE DWARF LUMINOSITY FUNCTION
A catalog of 8472 white dwarf (WD) candidates is presented, selected using reduced proper motions from the deep proper motion catalog of Munn et al. Candidates are selected in the magnitude range 16 < r < 21.5 over 980 square degrees, and 16 < r < 21.3 over an additional 1276 square degr...
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ndltd-arizona.edu-oai-arizona.openrepository.com-10150-6226332017-02-23T03:00:38Z A DEEP PROPER MOTION CATALOG WITHIN THE SLOAN DIGITAL SKY SURVEY FOOTPRINT. II. THE WHITE DWARF LUMINOSITY FUNCTION Munn, Jeffrey A. Harris, Hugh C. von Hippel, Ted Kilic, Mukremin Liebert, James W. Williams, Kurtis A. DeGennaro, Steven Jeffery, Elizabeth Dame, Kyra Gianninas, A. Brown, Warren R. Univ Arizona, Steward Observ stars: luminosity function mass function white dwarfs A catalog of 8472 white dwarf (WD) candidates is presented, selected using reduced proper motions from the deep proper motion catalog of Munn et al. Candidates are selected in the magnitude range 16 < r < 21.5 over 980 square degrees, and 16 < r < 21.3 over an additional 1276 square degrees, within the Sloan Digital Sky Survey (SDSS) imaging footprint. Distances, bolometric luminosities, and atmospheric compositions are derived by fitting SDSS ugriz photometry to pure hydrogen and helium model atmospheres (assuming surface gravities log g = 8). The disk white dwarf luminosity function (WDLF) is constructed using a sample of 2839 stars with 5.5 < M-bol < 17, with statistically significant numbers of stars cooler than the turnover in the luminosity function. The WDLF for the halo is also constructed, using a sample of 135 halo WDs with 5 < M-bol < 16. We find space densities of disk and halo WDs in the solar neighborhood of 5.5 +/- 0.1 x 10(-3) pc(-3) and 3.5 +/- 0.7 x 10(-5) pc(-3), respectively. We resolve the bump in the disk WDLF due to the onset of fully convective envelopes in WDs, and see indications of it in the halo WDLF as well. 2016-12-19 Article A DEEP PROPER MOTION CATALOG WITHIN THE SLOAN DIGITAL SKY SURVEY FOOTPRINT. II. THE WHITE DWARF LUMINOSITY FUNCTION 2016, 153 (1):10 The Astronomical Journal 1538-3881 10.3847/1538-3881/153/1/10 http://hdl.handle.net/10150/622633 http://arizona.openrepository.com/arizona/handle/10150/622633 The Astronomical Journal en http://stacks.iop.org/1538-3881/153/i=1/a=10?key=crossref.bfd6e7fa2f9fb0766126634bcb0f9d6b © 2016. The American Astronomical Society. All rights reserved. IOP PUBLISHING LTD |
collection |
NDLTD |
language |
en |
sources |
NDLTD |
topic |
stars: luminosity function mass function white dwarfs |
spellingShingle |
stars: luminosity function mass function white dwarfs Munn, Jeffrey A. Harris, Hugh C. von Hippel, Ted Kilic, Mukremin Liebert, James W. Williams, Kurtis A. DeGennaro, Steven Jeffery, Elizabeth Dame, Kyra Gianninas, A. Brown, Warren R. A DEEP PROPER MOTION CATALOG WITHIN THE SLOAN DIGITAL SKY SURVEY FOOTPRINT. II. THE WHITE DWARF LUMINOSITY FUNCTION |
description |
A catalog of 8472 white dwarf (WD) candidates is presented, selected using reduced proper motions from the deep proper motion catalog of Munn et al. Candidates are selected in the magnitude range 16 < r < 21.5 over 980 square degrees, and 16 < r < 21.3 over an additional 1276 square degrees, within the Sloan Digital Sky Survey (SDSS) imaging footprint. Distances, bolometric luminosities, and atmospheric compositions are derived by fitting SDSS ugriz photometry to pure hydrogen and helium model atmospheres (assuming surface gravities log g = 8). The disk white dwarf luminosity function (WDLF) is constructed using a sample of 2839 stars with 5.5 < M-bol < 17, with statistically significant numbers of stars cooler than the turnover in the luminosity function. The WDLF for the halo is also constructed, using a sample of 135 halo WDs with 5 < M-bol < 16. We find space densities of disk and halo WDs in the solar neighborhood of 5.5 +/- 0.1 x 10(-3) pc(-3) and 3.5 +/- 0.7 x 10(-5) pc(-3), respectively. We resolve the bump in the disk WDLF due to the onset of fully convective envelopes in WDs, and see indications of it in the halo WDLF as well. |
author2 |
Univ Arizona, Steward Observ |
author_facet |
Univ Arizona, Steward Observ Munn, Jeffrey A. Harris, Hugh C. von Hippel, Ted Kilic, Mukremin Liebert, James W. Williams, Kurtis A. DeGennaro, Steven Jeffery, Elizabeth Dame, Kyra Gianninas, A. Brown, Warren R. |
author |
Munn, Jeffrey A. Harris, Hugh C. von Hippel, Ted Kilic, Mukremin Liebert, James W. Williams, Kurtis A. DeGennaro, Steven Jeffery, Elizabeth Dame, Kyra Gianninas, A. Brown, Warren R. |
author_sort |
Munn, Jeffrey A. |
title |
A DEEP PROPER MOTION CATALOG WITHIN THE SLOAN DIGITAL SKY SURVEY FOOTPRINT. II. THE WHITE DWARF LUMINOSITY FUNCTION |
title_short |
A DEEP PROPER MOTION CATALOG WITHIN THE SLOAN DIGITAL SKY SURVEY FOOTPRINT. II. THE WHITE DWARF LUMINOSITY FUNCTION |
title_full |
A DEEP PROPER MOTION CATALOG WITHIN THE SLOAN DIGITAL SKY SURVEY FOOTPRINT. II. THE WHITE DWARF LUMINOSITY FUNCTION |
title_fullStr |
A DEEP PROPER MOTION CATALOG WITHIN THE SLOAN DIGITAL SKY SURVEY FOOTPRINT. II. THE WHITE DWARF LUMINOSITY FUNCTION |
title_full_unstemmed |
A DEEP PROPER MOTION CATALOG WITHIN THE SLOAN DIGITAL SKY SURVEY FOOTPRINT. II. THE WHITE DWARF LUMINOSITY FUNCTION |
title_sort |
deep proper motion catalog within the sloan digital sky survey footprint. ii. the white dwarf luminosity function |
publisher |
IOP PUBLISHING LTD |
publishDate |
2016 |
url |
http://hdl.handle.net/10150/622633 http://arizona.openrepository.com/arizona/handle/10150/622633 |
work_keys_str_mv |
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