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Stellar populations – the next ten years

Published online by Cambridge University Press:  01 December 2006

J. Bland-Hawthorn*
Affiliation:
Anglo-Australian Observatory, PO Box 296, Epping, NSW 2121, Australia
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Abstract

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The study of stellar populations is a discipline that is highly dependent on both imaging and spectroscopy. I discuss techniques in different regimes of resolving power: broadband imaging (R∼4), intermediate band imaging (R∼16, 64), narrowband spectral imaging (R∼256, 1024, 4096). In recent years, we have seen major advances in broadband all-sky surveys that are set to continue across optical and IR bands, with the added benefit of the time domain, higher sensitivity, and improved photometric accuracy. Tunable filters and integral field spectrographs are poised to make further inroads into intermediate and narrowband imaging studies of stellar populations. Further advances will come from AO-assisted imaging and imaging spectroscopy, although photometric accuracy will be challenging. Integral field spectroscopy will continue to have a major impact on future stellar population studies, extending into the near infrared once the OH suppression problem is finally resolved. A sky rendered dark will allow a host of new ideas to be explored, and old ideas to be revisited.

Type
Contributed Papers
Copyright
Copyright © International Astronomical Union 2007

References

Alcock, C. et al. , 1997, ApJ, 486, 697CrossRefGoogle Scholar
Allen, P. D., Driver, S. P. et al. 2006, MNRAS, 371, 2CrossRefGoogle Scholar
Bessell, M. S. 2005, ARAA, 43, 293CrossRefGoogle Scholar
Bland-Hawthorn, J. 2000, ASP Conf. Ser. 195: Imaging the Universe in 3D, 195, 34Google Scholar
Bland-Hawthorn, J., & Kedziora-Chudczer, L. 2003, PASP, 20, 242Google Scholar
Bland-Hawthorn, J. et al. 2004, SPIE, 5492, 242Google Scholar
Bland-Hawthorn, J., Vlajić, M., Freeman, K. C., & Draine, B. T. 2005, ApJ, 629, 239CrossRefGoogle Scholar
Bland-Hawthorn, J., & Horton, A. 2006, SPIE, 6269, 21Google Scholar
Bland-Hawthorn, J. 2006, New Astronomy Review, 50, 75CrossRefGoogle Scholar
Bland-Hawthorn, J., & Freeman, K. C. 2006, Mem. della Soc. Astron. Italiana, 77, 1095Google Scholar
Blanton, M. R., Berlind, A. A., & Hogg, D. W. 2006, arXiv:astro-ph/0608353Google Scholar
Brown, T. M. et al. 2006, ApJ, 652, 323CrossRefGoogle Scholar
Burton, M. G., et al. 2005, PASP, 22, 199Google Scholar
Cecil, G. 2006, New Astronomy Reviews, 49, 553CrossRefGoogle Scholar
Cepa, J., et al. 2003, SPIE, 4841, 1739Google Scholar
Content, R., Morris, S. L., & Dubbeldam, M. 2003, SPIE, 4842, 174Google Scholar
Cresci, G. et al. 2006, Åp, 458, 385Google Scholar
Dyson, F., 1999, Nat, 400, 27CrossRefGoogle Scholar
Ellis, S. C., & Bland-Hawthorn, J. 2006, arXiv:astro-ph/0602573Google Scholar
Förster, Schreiber N. M. et al. , 2006, ApJ, 645, 1062CrossRefGoogle Scholar
Freedman, W. L., et al. 2001, ApJ, 553, 47CrossRefGoogle Scholar
Fruchter, A. S., & Hook, R. N. 2002, PASP, 114, 144CrossRefGoogle Scholar
Gardner, J. P., et al. 2006, SPIE, 6265, 17Google Scholar
Gunn, J. E., et al. 2006, AJ, 131, 2332CrossRefGoogle Scholar
Hammer, F., et al. 2004, SPIE, 5382, 727Google Scholar
Henault, F., et al. 2003, SPIE, 4841, 1096Google Scholar
Juric, M., et al. 2005, arXiv:astro-ph/0510520Google Scholar
Kuntschner, H., et al. 2006, MNRAS, 369, 497CrossRefGoogle Scholar
Law, N. M., Mackay, C. D., & Baldwin, J. E. 2006, Åp, 446, 739Google Scholar
Lemon, D. J., Wyse, R. F. G., Liske, J., Driver, S. P., & Horne, K. 2004, MNRAS, 347, 1043CrossRefGoogle Scholar
Liu, M. C. 2006, SPIE, 6272, L14Google Scholar
Luck, R. E., Kovtyukh, V. V., & Andrievsky, S. M. 2006, AJ, 132, 902CrossRefGoogle Scholar
Martin, C., et al. 2003, SPIE, 4854, 336Google Scholar
McDermid, R. M. et al. , 2006, MNRAS, 373, 906CrossRefGoogle Scholar
McGrath, A., & Haynes, R. 2006, SPIE, 6273, 57Google Scholar
Miyazaki, S., et al. 2002, PASJ, 54, 833CrossRefGoogle Scholar
Morris, S. L., Gerssen, J., Swinbank, M., & Wilman, R. 2006, New Astronomy Review, 49, 488CrossRefGoogle Scholar
Nordström, B., et al. 2004, Åp, 418, 989Google Scholar
Olsen, K. A. G., Blum, R. D., & Rigaut, F. 2003, AJ, 126, 452CrossRefGoogle Scholar
Olsen, K. A. G. et al. 2006, AJ, 132, 271CrossRefGoogle Scholar
Park, C. et al. 2006, arXiv:astro-ph/0611610Google Scholar
Perryman, M. A. C., et al. 2001, Åp, 369, 339Google Scholar
Rutten, R., Benn, C.R., & Mendez, J., New Astronomy Reviews, 49, 487CrossRefGoogle Scholar
Ryder, S. D., Fenner, Y., & Gibson, B. K. 2005, MNRAS, 358, 1337CrossRefGoogle Scholar
Sharp, R. G. et al. 2004, Astronomische Nachrichten, 325, 108CrossRefGoogle Scholar
Springel, V., Frenk, C. S., & White, S. D. M. 2006, Nat, 440, 1137CrossRefGoogle Scholar
Steidel, C. C. et al. 1996, ApJL, 462, L17CrossRefGoogle Scholar
Stubbs, C. W., & Tonry, J. L. 2006, ApJ, 646, 1436CrossRefGoogle Scholar
Tonry, J. L., & Luppino, G. A. 2000, ASP Conf. Ser. 195: Imaging the Universe in 3D, 195, 479Google Scholar
Tonry, J. L. et al. 2001, ApJ, 546, 681CrossRefGoogle Scholar
Tully, R. B., et al. 2006, AJ, 132, 729CrossRefGoogle Scholar
Vacca, W. D., Sheehy, C. D., & Graham, J. R. 2007, arXiv:astro-ph/0701628Google Scholar
van Breugel, W., & Bland-Hawthorn, J. 2000, PASP, 112, 579CrossRefGoogle Scholar
Wilkinson, M. I., et al. 2005, MNRAS, 359, 1306CrossRefGoogle Scholar
Wolf, C. et al. 2003, Åp, 401, 73Google Scholar
Wyse, R. F. G., & Gilmore, G. 2006, IAU Symposium, 232, 140Google Scholar