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Wide-band, low-frequency pulse profiles of 100 radio pulsars with LOFAR

  • M. Pilia
  • , J. W.T. Hessels
  • , B. W. Stappers
  • , V. I. Kondratiev
  • , M. Kramer
  • , J. Van Leeuwen
  • , P. Weltevrede
  • , A. G. Lyne
  • , K. Zagkouris
  • , T. E. Hassall
  • , A. V. Bilous
  • , R. P. Breton
  • , H. Falcke
  • , J. M. Grießmeier
  • , E. Keane
  • , A. Karastergiou
  • , M. Kuniyoshi
  • , A. Noutsos
  • , S. Osłowski
  • , M. Serylak
  • C. Sobey, S. Ter Veen, A. Alexov, J. Anderson, A. Asgekar, I. M. Avruch, M. E. Bell, M. J. Bentum, G. Bernardi, L. Bîrzan, A. Bonafede, F. Breitling, J. W. Broderick, M. Brüggen, B. Ciardi, S. Corbel, E. De Geus, A. De Jong, A. Deller, S. Duscha, J. Eislöffel, R. A. Fallows, R. Fender, C. Ferrari, W. Frieswijk, M. A. Garrett, A. W. Gunst, J. P. Hamaker, G. Heald, A. Horneffer, P. Jonker, E. Juette, G. Kuper, P. Maat, G. Mann, S. Markoff, R. McFadden, D. McKay-Bukowski, J. C.A. Miller-Jones, A. Nelles, H. Paas, M. Pandey-Pommier, M. Pietka, R. Pizzo, A. G. Polatidis, W. Reich, H. Röttgering, A. Rowlinson, D. Schwarz, O. Smirnov, M. Steinmetz, A. Stewart, J. D. Swinbank, M. Tagger, Y. Tang, C. Tasse, S. Thoudam, M. C. Toribio, A. J. Van Der Horst, R. Vermeulen, C. Vocks, R. J. Van Weeren, R. A.M.J. Wijers, R. Wijnands, S. J. Wijnholds, O. Wucknitz, P. Zarka
  • Netherlands Institute of Radio Astronomy (ASTRON)
  • Osservatorio Astronomico di Cagliari
  • University of Amsterdam
  • University of Manchester
  • P. N. Lebedev Physical Institute
  • Max-Planck-Institut für Radioastronomie
  • University of Oxford
  • University of Southampton
  • Radboud University Nijmegen
  • LPC2E - Univ. d'Orléans/cnrs
  • Swinburne University of Technology
  • University of Sydney
  • National Astronomical Observatory of Japan
  • Universität Bielefeld
  • University of the Western Cape
  • Space Telescope Science Institute
  • GFZ German Research Centre for Geosciences
  • Shell Technology Center Bangalore
  • SRON Netherlands Insitute for Space Research
  • University of Groningen
  • CSIRO Australia Telescope National Facility
  • University of Twente
  • Harvard-Smithsonian Center for Astrophysics
  • Leiden University
  • Universität Hamburg
  • Leibniz-Institut für Astrophysik Potsdam (AIP)
  • Max Planck Institute for Astrophysics
  • 91191
  • SmarterVision BV
  • Thüringer Landessternwarte
  • Laboratoire Lagrange, UMR 7293, Université de Nice Sophia-Antipolis, CNRS, Observatoire de la Côte d'Azur
  • University of Bochum
  • Sodankylä Geophysical Observatory
  • Harwell Science and Innovation Campus
  • Curtin University
  • University Groningen
  • Centre de Recherche Astrophysique de Lyon
  • Rhodes University
  • SKA South Africa
  • Princeton University
  • LESIA - Laboratoire d'Etudes Spatiales et d'Instrumentation en Astrophysique

Research output: Contribution to journalArticlepeer-review

82 Scopus citations

Abstract

Context. LOFAR offers the unique capability of observing pulsars across the 10-240 MHz frequency range with a fractional bandwidth of roughly 50%. This spectral range is well suited for studying the frequency evolution of pulse profile morphology caused by both intrinsic and extrinsic effects such as changing emission altitude in the pulsar magnetosphere or scatter broadening by the interstellar medium, respectively. Aims. The magnitude of most of these effects increases rapidly towards low frequencies. LOFAR can thus address a number of open questions about the nature of radio pulsar emission and its propagation through the interstellar medium. Methods. We present the average pulse profiles of 100 pulsars observed in the two LOFAR frequency bands: high band (120-167 MHz, 100 profiles) and low band (15-62 MHz, 26 profiles). We compare them with Westerbork Synthesis Radio Telescope (WSRT) and Lovell Telescope observations at higher frequencies (350 and 1400 MHz) to study the profile evolution. The profiles were aligned in absolute phase by folding with a new set of timing solutions from the Lovell Telescope, which we present along with precise dispersion measures obtained with LOFAR. Results. We find that the profile evolution with decreasing radio frequency does not follow a specific trend; depending on the geometry of the pulsar, new components can enter into or be hidden from view. Nonetheless, in general our observations confirm the widening of pulsar profiles at low frequencies, as expected from radius-to-frequency mapping or birefringence theories.

Original languageBritish English
Article numberA92
JournalAstronomy and Astrophysics
Volume586
DOIs
StatePublished - 1 Feb 2016

Keywords

  • Pulsars: general
  • Stars: neutron

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