MOONS: a Multi-Object Optical and Near-infrared Spectrograph for the VLT
M. Cirasuolo, J. Afonso, R. Bender, P. Bonifacio, C. Evans, L. Kaper,, E. Oliva, L. Vanzi, M. Abreu, E. Atad-Ettedgui, C. Babusiaux, F. Bauer, P., Best, N. Bezawada, I. Bryson, A. Cabral, K. Caputi, M. Centrone, F. Chemla,, A. Cimatti, M-R. Cioni, G. Clementini, J. Coelho

TL;DR
MOONS is a versatile multi-object spectrograph for the VLT, covering optical to near-infrared wavelengths with multiple resolution modes, enabling extensive studies of galaxy evolution and stellar chemistry.
Contribution
This paper presents the conceptual design of MOONS, a new multi-object spectrograph with large multiplex, broad wavelength coverage, and dual resolution modes for the VLT, enhancing observational capabilities.
Findings
Design includes 1000 fibers over 500 sq arcmin field
Wavelength coverage from 0.8 to 1.8 micrometers
Two resolution modes: R=4,000-6,000 and R=8,000-20,000
Abstract
MOONS is a new conceptual design for a Multi-Object Optical and Near-infrared Spectrograph for the Very Large Telescope (VLT), selected by ESO for a Phase A study. The baseline design consists of 1000 fibers deployable over a field of view of 500 square arcmin, the largest patrol field offered by the Nasmyth focus at the VLT. The total wavelength coverage is 0.8um-1.8um and two resolution modes: medium resolution and high resolution. In the medium resolution mode (R=4,000-6,000) the entire wavelength range 0.8um-1.8um is observed simultaneously, while the high resolution mode covers simultaneously three selected spectral regions: one around the CaII triplet (at R=8,000) to measure radial velocities, and two regions at R=20,000 one in the J-band and one in the H-band, for detailed measurements of chemical abundances. The grasp of the 8.2m Very Large Telescope (VLT) combined with the…
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