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Measurement of the Crab Nebula Spectrum Past 100 TeV with HAWC

  • Hawc Collaboration
    ,
  • A. U. Abeysekara
    ,
  • A. Albert
    ,
  • R. Alfaro
    ,
  • C. Alvarez
    ,
  • J. D. Álvarez
  • University of Utah
    ,
  • Los Alamos National Laboratory
    ,
  • Universidad Nacional Autónoma de México
    ,
  • Universidad Autonoma de Chiapas
    ,
  • Universidad Michoacana de San Nicolas de Hidalgo
    ,
  • Pennsylvania State University
Research Output:
Contribution to journal
Article
Peer-review

Open access

Publication metrics

Metrics

Scopus
Citations
SciVal
FWCI
4.09
SciVal
Author count
105
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Paper percentile
96
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Citations
136
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Top percentile
5

Abstract

We present TeV gamma-ray observations of the Crab Nebula, the standard reference source in ground-based gamma-ray astronomy, using data from the High Altitude Water Cherenkov (HAWC) Gamma-Ray Observatory. In this analysis we use two independent energy estimation methods that utilize extensive air shower variables such as the core position, shower angle, and shower lateral energy distribution. In contrast, the previously published HAWC energy spectrum roughly estimated the shower energy with only the number of photomultipliers triggered. This new methodology yields a much-improved energy resolution over the previous analysis and extends HAWC's ability to accurately measure gamma-ray energies well beyond 100 TeV. The energy spectrum of the Crab Nebula is well fit to a log-parabola shape (dN/dE = φ0 (E/7 TeV)-α-β In (E/7 TeV) with emission up to at least 100 TeV. For the first estimator, a ground parameter that utilizes fits to the lateral distribution function to measure the charge density 40 m from the shower axis, the best-fit values are φ0 = (2.35 ± 0.04-0.21 +0.20) × 10-13 (TeV cm2 s)-1, α = 2.79 ± 0.02-0.03 +0.01, and β = 0.10 ± 0.01-0.03 +0.01. For the second estimator, a neural network that uses the charge distribution in annuli around the core and other variables, these values are φ0 = (2.31 ± 0.02-0.17 +0.32) × 10-13(TeV cm2 s)-1, α = 2.73 ± 0.02-0.02 +0.03, and β = 0.06 ± 0.01 ± 0.02. The first set of uncertainties is statistical; the second set is systematic. Both methods yield compatible results. These measurements are the highest-energy observation of a gamma-ray source to date.

Publication Information

Output type

Research Output:
Contribution to journal
Article
Peer-review

Original language

English

Article number

134

Pages from-to (Number of pages)

Pages 134

Journal (Volume, Issue Number)

Astrophysical Journal (Volume 881, Issue 2)

Publication milestones

  • Published - 20/08/2019

Publication status

Published - 20/08/2019

ISSN

0004-637X

Publication IDs

  • Scopus: 85072321732

Funding Details

FundersFunding numbers
NSF
1806408, 1806854, 1607415, 1912708, 1914549