English

Ultra High Energy Cosmology with POLARBEAR

Cosmology and Nongalactic Astrophysics 2011-10-11 v1

Abstract

Observations of the temperature anisotropy of the Cosmic Microwave Background (CMB) lend support to an inflationary origin of the universe, yet no direct evidence verifying inflation exists. Many current experiments are focussing on the CMB's polarization anisotropy, specifically its curl component (called "B-mode" polarization), which remains undetected. The inflationary paradigm predicts the existence of a primordial gravitational wave background that imprints a unique B-mode signature on the CMB's polarization at large angular scales. The CMB B-mode signal also encodes gravitational lensing information at smaller angular scales, bearing the imprint of cosmological large scale structures (LSS) which in turn may elucidate the properties of cosmological neutrinos. The quest for detection of these signals; each of which is orders of magnitude smaller than the CMB temperature anisotropy signal, has motivated the development of background-limited detectors with precise control of systematic effects. The POLARBEAR experiment is designed to perform a deep search for the signature of gravitational waves from inflation and to characterize lensing of the CMB by LSS. POLARBEAR is a 3.5 meter ground-based telescope with 3.8 arcminute angular resolution at 150 GHz. At the heart of the POLARBEAR receiver is an array featuring 1274 antenna-coupled superconducting transition edge sensor (TES) bolometers cooled to 0.25 Kelvin. POLARBEAR is designed to reach a tensor-to-scalar ratio of 0.025 after two years of observation -- more than an order of magnitude improvement over the current best results, which would test physics at energies near the GUT scale. POLARBEAR had an engineering run in the Inyo Mountains of Eastern California in 2010 and will begin observations in the Atacama Desert in Chile in 2011.

Keywords

Cite

@article{arxiv.1110.2101,
  title  = {Ultra High Energy Cosmology with POLARBEAR},
  author = {B. Keating and S. Moyerman and D. Boettger and J. Edwards and G. Fuller and F. Matsuda and N. Miller and H. Paar and G. Rebeiz and I. Schanning and M. Shimon and N. Stebor and K. Arnold and D. Flanigan and W. Holzapfel and J. Howard and Z. Kermish and A. Lee and M. Lungu and M. Myers and H. Nishino and R. O'Brient and E. Quealy and C. Reichardt and P. Richards and C. Shimmin and B. Steinbach and A. Suzuki and O. Zahn and J. Borrill and C. Cantalupo and E. Kisner and E. Linder and M. Sholl and H. Spieler and A. Anthony and N. Halverson and J. Errard and G. Fabbian and M. Le Jeune and R. Stompor and A. Jaffe and D. O'Dea and Y. Chinone and M. Hasegawa and M. Hazumi and T. Matsumura and H. Morii and A. Shimizu and T. Tomaru and P. Hyland and M. Dobbs and P. Ade and W. Grainger and C. Tucker},
  journal= {arXiv preprint arXiv:1110.2101},
  year   = {2011}
}

Comments

8 pages, 6 figures, DPF 2011 conference proceedings