English

Robust diffraction-limited NIR-to-NUV wide-field imaging from stratospheric balloon-borne platforms -- SuperBIT science telescope commissioning flight & performance

Instrumentation and Methods for Astrophysics 2020-06-08 v1

Abstract

At a fraction the total cost of an equivalent orbital mission, scientific balloon-borne platforms, operating above 99.7% of the Earth's atmosphere, offer attractive, competitive, and effective observational capabilities -- namely space-like resolution, transmission, and backgrounds -- that are well suited for modern astronomy and cosmology. SuperBIT is a diffraction-limited, wide-field, 0.5 m telescope capable of exploiting these observing conditions in order to provide exquisite imaging throughout the near-IR to near-UV. It utilizes a robust active stabilization system that has consistently demonstrated a 1 sigma sky-fixed pointing stability at 48 milliarcseconds over multiple 1 hour observations at float. This is achieved by actively tracking compound pendulations via a three-axis gimballed platform, which provides sky-fixed telescope stability at < 500 milliarcseconds and corrects for field rotation, while employing high-bandwidth tip/tilt optics to remove residual disturbances across the science imaging focal plane. SuperBIT's performance during the 2019 commissioning flight benefited from a customized high-fidelity science-capable telescope designed with exceptional thermo- and opto-mechanical stability as well as tightly constrained static and dynamic coupling between high-rate sensors and telescope optics. At the currently demonstrated level of flight performance, SuperBIT capabilities now surpass the science requirements for a wide variety of experiments in cosmology, astrophysics and stellar dynamics.

Keywords

Cite

@article{arxiv.1911.11210,
  title  = {Robust diffraction-limited NIR-to-NUV wide-field imaging from stratospheric balloon-borne platforms -- SuperBIT science telescope commissioning flight & performance},
  author = {L. Javier Romualdez and Steven J. Benton and Anthony M. Brown and Paul Clark and Christopher J. Damaren and Tim Eifler and Aurelien A. Fraisse and Mathew N. Galloway and Ajay Gill and John W. Hartley and Bradley Holder and Eric M. Huff and Mathilde Jauzac and William C. Jones and David Lagattuta and Jason S. -Y. Leung and Lun Li and Thuy Vy T. Luu and Richard J. Massey and Jacqueline McCleary and James Mullaney and Johanna M. Nagy and C. Barth Netterfield and Susan Redmond and Jason D. Rhodes and Jürgen Schmoll and Mohamed M. Shaaban and Ellen Sirks and Sut-Ieng Tam},
  journal= {arXiv preprint arXiv:1911.11210},
  year   = {2020}
}

Comments

The following article has been submitted to Review of Scientific Instruments (RSI)