English

Instrument Overview of Taurus: A Balloon-borne CMB and Dust Polarization Experiment

Instrumentation and Methods for Astrophysics 2024-07-16 v2

Abstract

Taurus is a balloon-borne cosmic microwave background (CMB) experiment optimized to map the E-mode polarization and Galactic foregrounds at the largest angular scales (\ell <\lt 30) and improve measurements of the optical depth to reionization (τ\tau). This will pave the way for improved measurements of the sum of neutrino masses in combination with high-resolution CMB data while also testing the ΛCDM\Lambda CDM model on large angular scales and providing high-frequency maps of polarized dust foregrounds to the CMB community. These measurements take advantage of the low-loading environment found in the stratosphere and are enabled by NASA's super-pressure balloon platform, which provides access to 70% of the sky with a launch from Wanaka, New Zealand. Here we describe a general overview of Taurus, with an emphasis on the instrument design. Taurus will employ more than 10,000 100 mK transition edge sensor bolometers distributed across two low-frequency (150, 220 GHz) and one high-frequency (280, 350 GHz) dichroic receivers. The liquid helium cryostat housing the detectors and optics is supported by a lightweight gondola. The payload is designed to meet the challenges in mass, power, and thermal control posed by the super-pressure platform. The instrument and scan strategy are optimized for rigorous control of instrumental systematics, enabling high-fidelity linear polarization measurements on the largest angular scales.

Keywords

Cite

@article{arxiv.2407.01438,
  title  = {Instrument Overview of Taurus: A Balloon-borne CMB and Dust Polarization Experiment},
  author = {Jared L. May and Alexandre E. Adler and Jason E. Austermann and Steven J. Benton and Rick Bihary and Malcolm Durkin and Shannon M. Duff and Jeffrey P. Filippini and Aurelien A. Fraisse and Thomas J. L. J. Gascard and Sho M. Gibbs and Suren Gourapura and Jon E. Gudmundsson and John W. Hartley and Johannes Hubmayr and William C. Jones and Steven Li and Johanna M. Nagy and Kate Okun and Ivan L. Padilla and L. Javier Romualdez and Simon Tartakovsky and Michael R. Vissers},
  journal= {arXiv preprint arXiv:2407.01438},
  year   = {2024}
}