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Ultraviolet Spectropolarimetry With Polstar: Hot Star Magnetospheres

  • M. E. Shultz
  • , R. Casini
  • , M. C.M. Cheung
  • , A. David-Uraz
  • , T. del Pino Alemán
  • , Christi Erba
  • , C. P. Folsom
  • , K. Gayley
  • , Richard Ignace
  • , Z. Keszthelyi
  • , O. Kochukhov
  • , Yaël Nazé
  • , Coralie Neiner
  • , M. E. Oksala
  • , Véronique Petit
  • , P. A. Scowen
  • , N. Sudnik
  • , Asif ud-Doula
  • , Jorick S. Vink
  • , Gregg A. Wade
  • University of Delaware
  • National Center for Atmospheric Research
  • NSF NCAR High Altitude Observatory
  • Lockheed Martin Advanced Technology Center
  • Royal Military College of Canada
  • Howard University
  • NASA Goddard Space Flight Center
  • Instituto de Astrofisica de Canarias
  • Universidad de la Laguna
  • Institut de Planetologie
  • University of Tartu
  • University of Iowa
  • University of Iowa
  • Universiteit van Amsterdam
  • National Astronomical Observatory of Japan
  • Uppsala University
  • Uppsala University
  • University of Liège
  • Fund for Scientific Research-FNRS
  • Observatoire de Meudon
  • Sorbonne Universités
  • California Lutheran University
  • West Chester University
  • NASA
  • Université de Montréal
  • Centrum Astronomiczne im. M. Kopernika
  • Penn State Scranton
  • Armagh Observatory
  • Royal Military College of Canada

Research output: Contribution to journalArticle

Abstract

Polstar is a proposed NASA MIDEX space telescope that will provide high-resolution, simultaneous full-Stokes spectropolarimetry in the far ultraviolet, together with low-resolution linear polarimetry in the near ultraviolet. In this white paper, we describe the unprecedented capabilities this observatory would offer in order to obtain unique information on the magnetic and plasma properties of the magnetospheres of hot stars. This would enable a test of the fundamental hypothesis that magnetospheres should act to rapidly drain angular momentum, thereby spinning the star down, whilst simultaneously reducing the net mass-loss rate. Both effects are expected to lead to dramatic differences in the evolution of magnetic vs. non-magnetic stars.
Original languageAmerican English
Pages (from-to)1-44
Number of pages44
JournalarXiv: Astrophysics
DOIs
StatePublished - Nov 11 2021

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