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Astronomical Telescopes and Instrumentation | 2002

Overview of the SuperNova/Acceleration probe (SNAP)

Gregory L. Aldering; C. Akerlof; R. Amanullah; Pierre Astier; E. Barrelet; Christopher J. Bebek; Lars Bergström; J. Bercovitz; G. M. Bernstein; M. Bester; Alain Bonissent; C. Bower; W. Carithers; Eugene D. Commins; C. Day; Susana Elizabeth Deustua; R. DiGennaro; A. Ealet; Richard S. Ellis; M. Eriksson; Andrew S. Fruchter; J.-F. Genat; G. Goldhaber; Ariel Goobar; D. Groom; Stephen E. Harris; Peter R. Harvey; Henry D. Heetderks; S. Holland; Dragan Huterer

The SuperNova / Acceleration Probe (SNAP) is a space-based experiment to measure the expansion history of the Universe and study both its dark energy and the dark matter. The experiment is motivated by the startling discovery that the expansion of the Universe is accelerating. A 0.7 square-degree imager comprised of 36 large format fully-depleted n-type CCDs sharing a focal plane with 36 HgCdTe detectors forms the heart of SNAP, allowing discovery and lightcurve measurements simultaneously for many supernovae. The imager and a high-efficiency low-resolution integral field spectrograph are coupled to a 2-m three mirror anastigmat wide-field telescope, which will be placed in a high-earth orbit. The SNAP mission can obtain high-signal-to-noise calibrated light-curves and spectra for over 2000 Type Ia supernovae at redshifts between z=0.1 and 1.7. The resulting data set can not only determine the amount of dark energy with high precision, but test the nature of the dark energy by examining its equation of state. In particular, dark energy due to a cosmological constant can be differentiated from alternatives such asquintessence, by measuring the dark energys equation of state to an accuracy of +/-0.05, and by studying its time dependence.The SuperNova / Acceleration Probe (SNAP) is a space-based experiment to measure the expansion history of the Universe and study both its dark energy and the dark matter. The experiment is motivated by the startling discovery that the expansion of the Universe is accelerating. A 0.7~square-degree imager comprised of 36 large format fully-depleted n-type CCDs sharing a focal plane with 36 HgCdTe detectors forms the heart of SNAP, allowing discovery and lightcurve measurements simultaneously for many supernovae. The imager and a high-efficiency low-resolution integral field spectrograph are coupled to a 2-m three mirror anastigmat wide-field telescope, which will be placed in a high-earth orbit. The SNAP mission can obtain high-signal-to-noise calibrated light-curves and spectra for over 2000 Type Ia supernovae at redshifts between z = 0.1 and 1.7. The resulting data set can not only determine the amount of dark energy with high precision, but test the nature of the dark energy by examining its equation of state. In particular, dark energy due to a cosmological constant can be differentiated from alternatives such as quintessence, by measuring the dark energys equation of state to an accuracy of ± 0.05, and by studying its time dependence.


Astroparticle Physics | 2004

Weak lensing from space I: instrumentation and survey strategy

Jason Rhodes; Alexandre Refregier; Richard Massey; J. Albert; David Bacon; G. M. Bernstein; Richard S. Ellis; Bhuvnesh Jain; Alex G. Kim; M. Lampton; Timothy A. McKay; C. Akerlof; G. Aldering; R. Amanullah; Pierre Astier; Charles Baltay; E. Barrelet; Christopher J. Bebek; Lars Bergström; J. Bercovitz; M. Bester; B. Bigelow; Ralph C. Bohlin; Alain Bonissent; C. R. Bower; Mark L. Brown; M. Campbell; W. Carithers; Eugene D. Commins; C. Day

A wide-field space-based imaging telescope is necessary to fully exploit the technique of observing dark matter via weak gravitational lensing. This first paper in a three part series outlines the survey strategies and relevant instrumental parameters for such a mission. As a concrete example of hardware design, we consider the proposed Supernova/Acceleration Probe (SNAP). Using SNAP engineering models, we quantify the major contributions to this telescopes point spread function (PSF). These PSF contributions are relevant to any similar wide-field space telescope. We further show that the PSF of SNAP or a similar telescope will be smaller than current ground-based PSFs, and more isotropic and stable over time than the PSF of the Hubble Space Telescope. We outline survey strategies for two different regimes--a ``wide 300 square degree survey and a ``deep 15 square degree survey that will accomplish various weak lensing goals including statistical studies and dark matter mapping.


Astronomical Telescopes and Instrumentation | 2003

SNAP focal plane

Michael L. Lampton; Christopher J. Bebek; C. Akerlof; G. Aldering; R. Amanullah; Pierre Astier; E. Barrelet; Lars Bergström; J. Bercovitz; G. M. Bernstein; M. Bester; Alain Bonissent; C. R. Bower; W. Carithers; Eugene D. Commins; C. Day; Susana Elizabeth Deustua; R. DiGennaro; A. Ealet; Richard S. Ellis; M. Eriksson; Andrew S. Fruchter; Jean-Francois Genat; G. Goldhaber; Ariel Goobar; Donald E. Groom; Stewart E. Harris; Peter R. Harvey; Henry D. Heetderks; S. Holland

The proposed SuperNova/Acceleration Probe (SNAP) mission will have a two-meter class telescope delivering diffraction-limited images to an instrumented 0.7 square-degree field sensitive in the visible and near-infrared wavelength regime. We describe the requirements for the instrument suite and the evolution of the focal plane design to the present concept in which all the instrumentation -- visible and near-infrared imagers, spectrograph, and star guiders -- share one common focal plane.The proposed SuperNova/Acceleration Probe (SNAP) mission will have a two-meter class telescope delivering diffraction-limited images to an instrumented 0.7 square-degree field sensitive in the visible and near-infrared wavelength regime. We describe the requirements for the instrument suite and the evolution of the focal plane design to the present concept in which all the instrumentation -- visible and near-infrared imagers, spectrograph, and star guiders -- share one common focal plane.


UV/Optical/IR Space Telescopes: Innovative Technologies and Concepts | 2004

SNAP telescope: an update

Michael L. Lampton; Michael Sholl; Michael H. Krim; R. Besuner; C. Akerlof; G. Aldering; Rahman Amanullah; Pierre Astier; Charles Baltay; E. Barrelet; S. Basa; Christopher J. Bebek; J. Bercovitz; Lars Bergström; Gary Berstein; M. Bester; Ralph C. Bohlin; Alain Bonissent; C. R. Bower; M. Campbell; W. Carithers; Eugene D. Commins; C. Day; Susana Elizabeth Deustua; R. DiGennaro; A. Ealet; Richard S. Ellis; William Emmett; M. Eriksson; D. Fouchez

We present the baseline telescope design for the telescope for the SuperNova/Acceleration Probe (SNAP) space mission. SNAP’s purpose is to determine expansion history of the Universe by measuring the redshifts, magnitudes, and spectral classifications of thousands of supernovae with unprecedented accuracy. Discovering and measuring these supernovae demand both a wide optical field and a high sensitivity throughout the visible and near IR wavebands. We have adopted the annular-field three-mirror anastigmat (TMA) telescope configuration, whose classical aberrations (including chromatic) are zero. We show a preliminary optmechanical design that includes important features for stray light control and on-orbit adjustment and alignment of the optics. We briefly discuss stray light and tolerance issues, and present a preliminary wavefront error budget for the SNAP Telescope. We conclude by describing some of the design tasks being carried out during the current SNAP research and development phase.


Astronomical Telescopes and Instrumentation | 2002

Wide-Field Surveys from the SNAP Mission

Alex G. Kim; C. Akerlof; G. Aldering; R. Amanullah; Pierre Astier; E. Barrelet; Christopher J. Bebek; Lars Bergström; J. Bercovitz; G. M. Bernstein; M. Bester; Alain Bonissent; C. R. Bower; W. Carithers; Eugene D. Commins; C. Day; Susana Elizabeth Deustua; R. DiGennaro; A. Ealet; Richard S. Ellis; M. Eriksson; Andrew S. Fruchter; Jean-Francois Genat; G. Goldhaber; Ariel Goobar; Donald E. Groom; Stewart E. Harris; Peter R. Harvey; Henry D. Heetderks; S. Holland

The Supernova / Acceleration Probe (SNAP) is a proposed space-borne observatory that will survey the sky with a wide-field optical/near-infrared (NIR) imager. The images produced by SNAP will have an unprecedented combination of depth, solid-angle, angular resolution, and temporal sampling. For 16 months each, two 7.5 square-degree fields will be observed every four days to a magnitude depth of AB=27.7 in each of the SNAP filters, spanning 3500-17000Å. Co-adding images over all epochs will give AB=30.3 per filter. In addition, a 300 square-degree field will be surveyed to AB=28 per filter, with no repeated temporal sampling. Although the survey strategy is tailored for supernova and weak gravitational lensing observations, the resulting data will support a broad range of auxiliary science programs.


Astronomical Telescopes and Instrumentation | 2003

SNAP NIR detectors

Gregory Tarle; C. Akerlof; G. Aldering; R. Amanullah; Pierre Astier; E. Barrelet; Christopher J. Bebek; Lars Bergström; J. Bercovitz; G. M. Bernstein; M. Bester; Alain Bonissent; C. R. Bower; Mark L. Brown; W. Carithers; Eugene D. Commins; C. Day; Susana Elizabeth Deustua; R. DiGennaro; A. Ealet; Richard S. Ellis; M. Eriksson; Andrew S. Fruchter; Jean-Francois Genat; G. Goldhaber; Ariel Goobar; Donald E. Groom; Stewart E. Harris; Peter R. Harvey; Henry D. Heetderks

The SuperNova/Acceleration Probe (SNAP) will measure precisely the cosmological expansion history over both the acceleration and deceleration epochs and thereby constrain the nature of the dark energy that dominates our universe today. The SNAP focal plane contains equal areas of optical CCDs and NIR sensors and an integral field spectrograph. Having over 150 million pixels and a field-of-view of 0.34 square degrees, the SNAP NIR system will be the largest yet constructed. With sensitivity in the range 0.9-1.7 {micro}m, it will detect Type Ia supernovae between z = 1 and 1.7 and will provide follow-up precision photometry for all supernovae. HgCdTe technology, with a cut-off tuned to 1.7 {micro}m, will permit passive cooling at 140 K while maintaining noise below zodiacal levels. By dithering to remove the effects of intrapixel variations and by careful attention to other instrumental effects, we expect to control relative photometric accuracy below a few hundredths of a magnitude. Because SNAP continuously revisits the same fields we will be able to achieve outstanding statistical precision on the photometry of reference stars in these fields, allowing precise monitoring of our detectors. The capabilities of the NIR system for broadening the science reach of SNAP are discussed.


Proceedings of SPIE - The International Society for Optical Engineering | 2002

SNAP near infrared detectors

Gregory Tarle; C. Akerlof; G. Aldering; Rahman Amanullah; P. Astier; E. Barrelet; Christopher J. Bebek; Lars Bergström; J. Bercovitz; G. M. Bernstein; M. Bester; A. Bonissent; C. Bower; Mark L. Brown; W. Carithers; Eugene D. Commins; C. Day; Susana Elizabeth Deustua; R. DiGennaro; A. Ealet; Richard S. Ellis; M. Eriksson; Andrew S. Fruchter; J.-F. Genat; G. Goldhaber; Ariel Goobar; D. Groom; Stephen E. Harris; Peter R. Harvey; Henry D. Heetderks

The SuperNova/Acceleration Probe (SNAP) will measure precisely the cosmological expansion history over both the acceleration and deceleration epochs and thereby constrain the nature of the dark energy that dominates our universe today. The SNAP focal plane contains equal areas of optical CCDs and NIR sensors and an integral field spectrograph. Having over 150 million pixels and a field-of-view of 0.34 square degrees, the SNAP NIR system will be the largest yet constructed. With sensitivity in the range 0.9-1.7 {micro}m, it will detect Type Ia supernovae between z = 1 and 1.7 and will provide follow-up precision photometry for all supernovae. HgCdTe technology, with a cut-off tuned to 1.7 {micro}m, will permit passive cooling at 140 K while maintaining noise below zodiacal levels. By dithering to remove the effects of intrapixel variations and by careful attention to other instrumental effects, we expect to control relative photometric accuracy below a few hundredths of a magnitude. Because SNAP continuously revisits the same fields we will be able to achieve outstanding statistical precision on the photometry of reference stars in these fields, allowing precise monitoring of our detectors. The capabilities of the NIR system for broadening the science reach of SNAP are discussed.


Lawrence Berkeley National Laboratory | 2003

SNAP Satellite Focal Plane Development

Christopher J. Bebek; C. Akerlof; G. Aldering; Rahman Amanullah; Pierre Astier; Charles Baltay; E. Barrelet; S. Basa; J. Bercovitz; Lars Bergström; G.P. Berstein; M. Bester; Ralph C. Bohlin; Alain Bonissent; C. Bower; M. Campbell; W. Carithers; Eugene D. Commins; C. Day; Susana Elizabeth Deustua; R. DiGennaro; A. Ealet; Richard S. Ellis; W. Emmett; M. Eriksson; D. Fouchez; Andrew S. Fruchter; J.-F. Genat; Gerson Goldhaber; Ariel Goobar

The proposed SuperNova/Acceleration Probe (SNAP) mission will have a two-meter class telescope delivering diffraction-limited images to an instrumented 0.7 square degree field in the visible and near-infrared wavelength regime. The requirements for the instrument suite and the present configuration of the focal plane concept are presented. A two year R&D phase, largely supported by the Department of Energy, is just beginning. We describe the development activities that are taking place to advance our preparedness for mission proposal in the areas of detectors and electronics.


Lawrence Berkeley National Laboratory | 2002

The SNAP near infrared detectors

Gregory Tarle; C. Akerlof; G. Aldering; Rahman Amanullah; Pierre Astier; E. Barrelet; Christopher J. Bebek; Lars Bergström; J. Bercovitz; G. M. Bernstein; M. Bester; Alain Bonissent; C. R. Bower; W. Carithers; Eugene D. Commins; C. Day; Susana Elizabeth Deustua; R. DiGennaro; A. Ealet; Richard S. Ellis; M. Eriksson; Andrew S. Fruchter; J.-F. Genat; G. Goldhaber; Ariel Goobar; D. Groom; Stephen E. Harris; Peter R. Harvey; Henry D. Heetderks; S. Holland


Proceedings of SPIE - The International Society for Optical Engineering | 2004

SNAP Telescope: An Update

M. Lampton; Michael Sholl; M. Krim; R. Besuner; C. Akerlof; G. Aldering; Rahman Amanullah; P. Astier; Charles Baltay; E. Barrelet; S. Basa; Christopher J. Bebek; J. Bercovitz; Lars Bergström; G. Berstein; M. Bester; Ralph C. Bohlin; A. Bonissent; C. Bower; M. Campbell; W. Carithers; Eugene D. Commins; C. Day; Susana Elizabeth Deustua; R. DiGennaro; A. Ealet; Richard S. Ellis; W. Emmett; M. Eriksson; D. Fouchez

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C. Akerlof

University of Michigan

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Christopher J. Bebek

Lawrence Berkeley National Laboratory

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J. Bercovitz

Lawrence Berkeley National Laboratory

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M. Bester

University of California

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W. Carithers

Lawrence Berkeley National Laboratory

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R. DiGennaro

Lawrence Berkeley National Laboratory

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