Multi-object spectroscopy (MOS) is a powerful tool for space and ground-based telescopes for the study of the formation and evolution of galaxies. This technique requires a programmable slit mask for astronomical object selection. We are engaged in a European development of micromirror arrays (MMA) for generating reflective slit masks in future MOS, called MIRA. The 100 x 200 μm2 micromirrors are electrostatically tilted providing a precise angle. The main requirements are cryogenic environment capabilities, precise and uniform tilt angle over the whole device, uniformity of the mirror voltage-tilt hysteresis and a low mirror deformation. A first MMA with single-crystal silicon micromirrors was successfully designed, fabricated and tested. A new generation of micromirror arrays composed of 2048 micromirrors (32 x 64) and modelled for individual addressing were fabricated using fusion and eutectic wafer-level bonding. These micromirrors without coating show a peak-to-valley deformation less than 10 nm, a tilt angle of 24° for an actuation voltage of 130 V. Individual addressing capability of each mirror has been demonstrated using a line-column algorithm based on an optimized voltage-tilt hysteresis. Devices are currently packaged, wire-bonded and integrated to a dedicated electronics to demonstrate the individual actuation of all micromirrors on an array. An operational test of this large array with gold coated mirrors has been done at cryogenic temperature (162 K): the micromirrors were actuated successfully before, during and after the cryogenic experiment. The micromirror surface deformation was measured at cryo and is below 30 nm peak-to-valley.
[1]
Frederic Zamkotsian,et al.
Static and dynamic micro deformable mirror characterization by phase-shifting and time-averaged interferometry
,
2017,
International Conference on Space Optics.
[2]
Neil T. Gordon,et al.
A 2x2 multi-chip reconfigurable MOEMS mask: a stepping stone to large format microshutter arrays for coded aperture applications
,
2010,
Optical Engineering + Applications.
[3]
Wilfried Noell,et al.
Realization and characterization of a MEMS-based programmable slit mask for multi-object spectroscopy
,
2010,
MOEMS-MEMS.
[4]
Patrick Lanzoni,et al.
Characterization of MOEMS devices for the instrumentation of next generation space telescope
,
2003,
SPIE MOEMS-MEMS.
[5]
Massimo Stiavelli,et al.
Yardstick integrated science instrument module concept for NGST
,
1998,
Astronomical Telescopes and Instrumentation.
[6]
Frederic Zamkotsian,et al.
Static and dynamic micro deformable mirror characterization by phase-shifting and time-averaged interferometry
,
2004,
SPIE Astronomical Telescopes + Instrumentation.
[7]
Patrick Lanzoni,et al.
Successful evaluation for space applications of the 2048×1080 DMD
,
2011,
MOEMS-MEMS.
[8]
Alexander S. Kutyrev,et al.
JWST microshutter array system and beyond
,
2010,
MOEMS-MEMS.
[9]
M. Robberto,et al.
Applications of DMDs for astrophysical research
,
2009,
MOEMS-MEMS.
[10]
W. Noell,et al.
Arrays of High Tilt-Angle Micromirrors for Multiobject Spectroscopy
,
2007,
IEEE Journal of Selected Topics in Quantum Electronics.