The First Survey of X-Ray Flares from Gamma-Ray Bursts Observed by Swift: Temporal Properties and Morphology

We present the first systematic investigation of the morphological and timing properties of flares in GRBs observed by Swift XRT. We consider a large sample drawn from all GRBs detected by Swift, INTEGRAL, and HETE-2 prior to 2006 January 31, which had an XRT follow-up and which showed significant flaring. Our sample of 33 GRBs includes long and short, at low and high redshift, and a total of 69 flares. The strongest flares occur in the early phases, with a clear anticorrelation between the flare peak intensity and the flare time of occurrence. Fitting each X-ray flare with a Gaussian model, we find that the mean ratio of the width and peak time is ⟨ Δ t/t⟩ = 0.13 ± 0.10, albeit with a large scatter. Late flares at times >2000 s have long durations, Δ t > 300 s, and can be very energetic compared to the underlying continuum. We further investigated whether there is a clear link between the number of pulses detected in the prompt phase by BAT and the number of X-ray flares detected by XRT, finding no correlation. However, we find that the distribution of intensity ratios between successive BAT prompt pulses and that between successive XRT flares is the same, an indication of a common origin for gamma-ray pulses and X-ray flares. All evidence indicates that flares are indeed related to the workings of the central engine and, in the standard fireball scenario, originate from internal shocks rather than external shocks. While all flares can be explained by long-lasting engine activity, 29/69 flares may also be explained by refreshed shocks. However, 10 can only be explained by prolonged activity of the central engine.

[1]  Oswald H. W. Siegmund,et al.  UV, X-Ray, and Gamma-Ray Space Instrumentation for Astronomy XVIII , 2007 .

[2]  D. N. Burrows,et al.  The First Survey of X-Ray Flares from Gamma-Ray Bursts Observed by Swift: Spectral Properties and Energetics , 2007, 0706.1564.

[3]  R. Perna,et al.  X-ray flares and the duration of engine activity in gamma-ray bursts , 2006, astro-ph/0610730.

[4]  L. A. Antonelli,et al.  The variable X-ray light curve of GRB 050713A: the case of refreshed shocks , 2006, astro-ph/0602387.

[5]  C. Dermer Rapid X-Ray Declines and Plateaus in Swift GRB Light Curves Explained by a Highly Radiative Blast Wave , 2006, astro-ph/0606320.

[6]  T. Sakamoto,et al.  The Swift X-Ray Flaring Afterglow of GRB 050607 , 2006, astro-ph/0603658.

[7]  T. Sakamoto,et al.  The X-ray afterglow of the short gamma ray burst 050724 , 2006, astro-ph/0603475.

[8]  P. Giommi,et al.  Panchromatic study of GRB 060124: From precursor to afterglow , 2006, astro-ph/0602497.

[9]  N. Gehrels,et al.  Testing the Curvature Effect and Internal Origin of Gamma-Ray Burst Prompt Emissions and X-Ray Flares with Swift Data , 2006, astro-ph/0602142.

[10]  D. Proga,et al.  The late time evolution of gamma-ray bursts: ending hyperaccretion and producing flares , 2006, astro-ph/0601272.

[11]  P. Giommi,et al.  X-ray flare in XRF 050406: evidence for prolonged engine activity , 2006, astro-ph/0601173.

[12]  N. Gehrels,et al.  The Early X-Ray Emission from GRBs , 2006, astro-ph/0601125.

[13]  E. al.,et al.  Swift observations of the prompt X-ray emission and afterglow from GRB050126 and GRB050219A , 2005, astro-ph/0511751.

[14]  N. Gehrels,et al.  Evidence for a Canonical Gamma-Ray Burst Afterglow Light Curve in the Swift XRT Data , 2005, astro-ph/0508332.

[15]  N. Gehrels,et al.  The Giant X-Ray Flare of GRB 050502B: Evidence for Late-Time Internal Engine Activity , 2005, astro-ph/0512615.

[16]  P. Giommi,et al.  An origin for short γ-ray bursts unassociated with current star formation , 2005, Nature.

[17]  Bing Zhang,et al.  Flares in Long and Short Gamma-Ray Bursts: A Common Origin in a Hyperaccreting Accretion Disk , 2005, astro-ph/0511506.

[18]  N. Gehrels,et al.  Swift Observations of the X-Ray-Bright GRB 050315 , 2005, astro-ph/0510677.

[19]  N. Gehrels,et al.  Physical Processes Shaping Gamma-Ray Burst X-Ray Afterglow Light Curves: Theoretical Implications from the Swift X-Ray Telescope Observations , 2005, astro-ph/0508321.

[20]  P. Giommi,et al.  Prompt and afterglow early X-ray phases in the comoving frame. Evidence for Universal properties? , 2005 .

[21]  T Sakamoto,et al.  An unexpectedly rapid decline in the X-ray afterglow emission of long γ-ray bursts , 2005, Nature.

[22]  P. Mészáros,et al.  Inverse Compton X-Ray Flare from Gamma-Ray Burst Reverse Shock , 2005, astro-ph/0506157.

[23]  N. Gehrels,et al.  Bright X-ray Flares in Gamma-Ray Burst Afterglows , 2005, Science.

[24]  M. Feroci,et al.  Probing the Environment in Gamma-Ray Bursts: The Case of an X-Ray Precursor, Afterglow Late Onset, and Wind Versus Constant Density Profile in GRB 011121 and GRB 011211 , 2004, astro-ph/0412589.

[25]  K. Ioka,et al.  Variabilities of Gamma-Ray Burst Afterglows: Long-acting Engine, Anisotropic Jet, or Many Fluctuating Regions? , 2004, astro-ph/0409376.

[26]  Alan A. Wells,et al.  The Swift Gamma-Ray Burst Mission , 2004, astro-ph/0405233.

[27]  C. Dermer Curvature Effects in Gamma-Ray Burst Colliding Shells , 2004, astro-ph/0403508.

[28]  Richard M. Ambrosi,et al.  Readout modes and automated operation of the Swift X-ray Telescope , 2003, SPIE Optics + Photonics.

[29]  S. Covino,et al.  The afterglow of GRB 021004: surfing on density waves , 2002, astro-ph/0210333.

[30]  Z. Dai,et al.  Hydrodynamics of Relativistic Blast Waves in a Density-Jump Medium and Their Emission Signature , 2001, astro-ph/0111454.

[31]  A. Panaitescu,et al.  Afterglow Emission from Naked Gamma-Ray Bursts , 2000, astro-ph/0006317.

[32]  Abraham Loeb,et al.  Variability of Gamma-Ray Burst Afterglows due to Interstellar Turbulence , 1999, astro-ph/9910477.

[33]  T. Piran,et al.  Energetics and Luminosity Function of Gamma-Ray Bursts , 1999, astro-ph/9909014.

[34]  Tsvi Piran,et al.  Some Observational Consequences of Gamma-Ray Burst Shock Models , 1999, astro-ph/9906002.

[35]  M. Feroci,et al.  The X-Ray Afterglow of the Gamma-Ray Burst of 1997 May 8:Spectral Variability and Possible Evidence of an Iron Line , 1999, astro-ph/9902013.

[36]  M. Rees,et al.  Multiwavelength Afterglows in Gamma-Ray Bursts: Refreshed Shock and Jet Effects , 1998, astro-ph/9801258.

[37]  F. Daigne,et al.  GAMMA-RAY BURSTS FROM INTERNAL SHOCKS IN A RELATIVISTIC WIND : TEMPORAL AND SPECTRAL PROPERTIES , 1998, astro-ph/9801245.

[38]  M. Rees,et al.  Viewing Angle and Environment Effects in Gamma-Ray Bursts: Sources of Afterglow Diversity , 1997, astro-ph/9709273.

[39]  Hui Li,et al.  Log-normal Distributions in Gamma-Ray Burst Time Histories , 1996, astro-ph/9607131.

[40]  Gerald J. Fishman,et al.  Attributes of Pulses in Long Bright Gamma-Ray Bursts , 1996 .

[41]  D. Palmer,et al.  BATSE observations of gamma-ray burst spectra. 2: Peak energy evolution in bright, long bursts , 1994, astro-ph/9407090.

[42]  D. Palmer,et al.  BATSE observations of gamma-ray burst spectra. I: Spectral diversity , 1993 .

[43]  Franco Giovannelli,et al.  Frontier Objects in Astrophysics and Particle Physics , 1993 .