4MOST - 4-metre Multi Object Spectroscopic Telescope

SPIE 8446 (2012) 84460T

Authors:

R de Jong, O Bellido-Tirado, C Chiappini, E Depagne, R Haynes, D Johl, O Schnurr, A Schwope, J Walcher, F Dionies, D Haynes, A Kelz, F Kituara, G Lamer, I Minchev, V Muller, SE Nuza, J-C Olaya, T Piffl, E Popow, M Steinmetz, U Ural, M Williams, R Winkler, L Wisotski, W Ansorge, M Banerji, E Gonzalez Solares, M Irwin, R Kennicutt, D King, R McMahon, S Koposov, I Parry, D Sun, N Walton, G Finger, O Iwert, M Krumpe, J-L Lizon, M Vincenzo, J-P Amans, P Bonifacio, M Cohen, P Francois, P Jagourel, S Mignot, F Royer, P Sartoretti, R Bender, F Grupp, H-J Hess, F Lang-Bardl, B Muschielok, H Bohringer, T Boller, A Bongiorno, M Brusa, T Dwelly, A Merloni, K Nandra, M Salvato, J Pragt, R Navarro, G Gerlofsma, R Roelfsma, GB Dalton, K Middleton, IAJ Tosh, C Boeche, E Caffau, N Christlieb, E Grebel, C Hansen, A Koch, H-G Ludwig, A Quirrenbach, L Sbordone, W Seifert, G Thimm, T Trifonov, A Helmi, S Trager, S Feltzing, A Korn, W Boland

Abstract:

The 4MOST consortium is currently halfway through a Conceptual Design study for ESO with the aim to develop a wide-field ( < 3 square degree, goal < 5 square degree), high-multiplex ( < 1500 fibres, goal 3000 fibres) spectroscopic survey facility for an ESO 4m-class telescope (VISTA). 4MOST will run permanently on the telescope to perform a 5 year public survey yielding more than 20 million spectra at resolution R∼5000 (λ=390–1000 nm) and more than 2 million spectra at R~20,000 (395–456.5 nm and 587–673 nm). The 4MOST design is especially intended to complement three key all-sky, space-based observatories of prime European interest: Gaia, eROSITA and Euclid. Initial design and performance estimates for the wide-field corrector concepts are presented. Two fibre positioner concepts are being considered for 4MOST. The first one is a Phi-Theta system similar to ones used on existing and planned facilities. The second one is a new R-Theta concept with large patrol area. Both positioner concepts effectively address the issues of fibre focus and pupil pointing. The 4MOST spectrographs are fixed configuration two-arm spectrographs, with dedicated spectrographs for the high- and low-resolution fibres. A full facility simulator is being developed to guide trade-off decisions regarding the optimal field-of-view, number of fibres needed, and the relative fraction of high-to-low resolution fibres. The simulator takes mock catalogues with template spectra from Design Reference Surveys as starting point, calculates the output spectra based on a throughput simulator, assigns targets to fibres based on the capabilities of the fibre positioner designs, and calculates the required survey time by tiling the fields on the sky. The 4MOST consortium aims to deliver the full 4MOST facility by the end of 2018 and start delivering high-level data products for both consortium and ESO community targets a year later with yearly increments.

A search for ttbar resonances in lepton+jets events with highly boosted top quarks collected in pp collisions at sqrt(s) = 7 TeV with the ATLAS detector

JHEP (2012) 041

Authors:

S Livermore, ATLAS collaboration

Abstract:

A search for resonant production of high-mass top-quark pairs is performed on 2.05 fb^-1 of proton-proton collisions at sqrt(s) = 7 TeV collected in 2011 with the ATLAS experiment at the Large Hadron Collider. This analysis of the lepton+jets final state is specifically designed for the particular topology that arises from the decay of highly boosted top quarks. The observed ttbar invariant mass spectrum is found to be compatible with the Standard Model prediction and 95% credibility level upper limits are derived on the ttbar production rate through new massive states. An upper limit of 0.7 pb is set on the production cross section times branching fraction of a narrow 1 TeV resonance. A Kaluza-Klein gluon with a mass smaller than 1.5 TeV is excluded.

Multi-Object Spectroscopy with the European ELT: Scientific Synergies between EAGLE and EVE

SPIE 8466 (2012) 84667K

Authors:

CJ Evans, B Barbuy, P Bonifacio, F Chemla, J-G Cuby, GB Dalton, B Davies, K Disseau, K Dohlen, H Flores, E Gendron, I Guinouard, F Hammer, P Hastings, D Horville, P Jagourel, L Kaper, P Laporte, D Lee, T Morris, R Myers, R Navarro, P Parr-Burman, P Petitjean, M Puech, E Rollinde, G Rousset, H Schnetler, M Wells, N Welikala, Y Yang

Abstract:

The EAGLE and EVE Phase A studies for instruments for the European Extremely Large Telescope (E-ELT) originated from related top-level scientific questions, but employed different (yet complementary) methods to deliver the required observations. We re-examine the motivations for a multi-object spectrograph (MOS) on the E-ELT and present a unified set of requirements for a versatile instrument. Such a MOS would exploit the excellent spatial resolution in the near-infrared envisaged for EAGLE, combined with aspects of the spectral coverage and large multiplex of EVE. We briefly discuss the top-level systems which could satisfy these requirements in a single instrument at one of the Nasmyth foci of the E-ELT.

Subaru FMOS now and future

Society of Photo-Optical Instrumentation Engineers (SPIE) 8446 (2012) 0-0

Authors:

N Tamura, N Takato, F Iwamuro, M Akiyama, M Kimura, P Tait, GB Dalton, GJ Murray, S Smedley, T Maihara, K Ohta, Y Moritani, K Yabe, M Sumiyoshi, T Totani, H Sugai, H Karoji, S-Y Wang, Y Ohyama

Subaru FMOS now and Future

SPIE 8446 (2012) 84460M

Authors:

N Tamura, N Takato, F Iwamuro, M Akiyama, M Kimura, P Tait, GB Dalton, GJ Murray, S Smedley, T Maihara, K Ohta, Y Moritani, K Yabe, M Sumiyoshi, T Totani, H Sugai, H Karoji, S-Y Wang, Y Ohyama

Abstract:

Fiber Multi Object Spectrograph “FMOS” on Subaru Telescope is capable of configuring 400 fibers on the 30- arcmin diameter field of view at the prime focus for near-infrared (0.9–1.8 μm) spectroscopy, and this instrument has been open as a common-use instrument since May 2010. In this article, an overview of the instrument is given first, and then the typical operational sequence in science observation and a few notable features of the instrument are explained. In (see manuscript) 5, the instrument performance in terms of fiber positioning, auto guiding, and sensitivity to emission lines are highlighted. Recently (since March 2012) a Subaru Strategic Program (SSP) has started with FMOS to conduct a wide-field galaxy survey for a cosmological experiment. Upgrading fiber configuration by using a “metrology camera” has also been under discussion, which will enable to measure the positions of the 400 fibers quickly and shorten the fiber configuration time significantly. We will also report the status of these recent activities.