MULTIWAVELENGTH OBSERVATIONS OF THE VERY HIGH ENERGY BLAZAR 1ES 2344+514

Multiwavelength observations of the high-frequency-peaked blazar 1ES 2344+514 were performed from 2007 October to 2008 January. The campaign represents the first contemporaneous data on the object at very high energy (VHE, E >100 GeV) γ-ray, X-ray, and UV energies. Observations with VERITAS in VHE γ-rays yield a strong detection of 20σ with 633 excess events in a total exposure of 18.1 hr live time. A strong VHE γ-ray flare on 2007 December 7 is measured at F(>300 GeV) = (6.76 ± 0.62) × 10−11 photons cm−2 s−1, corresponding to 48% of the Crab Nebula flux. Excluding this flaring episode, nightly variability at lower fluxes is observed with a time-averaged mean of F(>300 GeV) = (1.06 ± 0.09) × 10−11 photons cm−2 s−1 (7.6% of the Crab Nebula flux). The differential photon spectrum between 390 GeV and 8.3 TeV for the time-averaged observations excluding 2007 December 7 is well described by a power law with a photon index of Γ = 2.78 ± 0.09stat ± 0.15syst. On the flaring night of 2007 December 7 the measured VHE γ-ray photon index was Γ = 2.43 ± 0.22stat ± 0.15syst. Over the full period of VERITAS observations contemporaneous X-ray and UV data were taken with Swift and RXTE. The measured 2–10 keV flux ranged by a factor of ∼7 during the campaign. On 2007 December 8 the highest ever observed X-ray flux from 1ES 2344+514 was measured by Swift X-ray Telescope at a flux of F(2–10 keV) = (6.28 ± 0.31) × 10−11 erg cm−2 s−1. Evidence for a correlation between the X-ray flux and VHE γ-ray flux on nightly timescales is indicated with a Pearson correlation coefficient of r = 0.60 ± 0.11. Contemporaneous spectral energy distributions (SEDs) of 1ES 2344+514 are presented for two distinct flux states. A one-zone synchrotron self-Compton (SSC) model describes both SEDs using parameters consistent with previous SSC modeling of 1ES 2344+514 from non-contemporaneous observations.

[1]  E. Striani,et al.  FERMI LARGE AREA TELESCOPE FIRST SOURCE CATALOG , 2010 .

[2]  T. Weekes,et al.  DISCOVERY OF VERY HIGH ENERGY GAMMA-RAY RADIATION FROM THE BL LAC 1ES 0806+524 , 2008, 0812.0978.

[3]  U. Padova,et al.  Extragalactic optical-infrared background radiation, its time evolution and the cosmic photon-photon opacity , 2008, 0805.1841.

[4]  H. Krawczynski,et al.  VERITAS Observations of the γ-Ray Binary LS I +61 303 , 2008, 0802.2363.

[5]  Miguel Ángel Martínez,et al.  Simultaneous Multiwavelength Observations of the Blazar 1ES 1959+650 at a Low TeV Flux , 2008, 0801.4029.

[6]  J. Bai,et al.  OPTICAL INTRA-DAY VARIABILITY IN BLAZARS , 2008, 0801.1217.

[7]  M. J. Page,et al.  Photometric calibration of the Swift ultraviolet/optical telescope , 2007, 0708.2259.

[8]  India.,et al.  Very high energy γ-ray and near infrared observations of 1ES2344+514 during 2004–05 , 2007, 0704.3533.

[9]  A. Chilingarian,et al.  Observation of Very High Energy γ-Rays from the AGN 1ES 2344+514 in a Low Emission State with the MAGIC Telescope , 2006 .

[10]  Astrophysics,et al.  SWIFT observations of TeV BL Lacertae objects , 2006, astro-ph/0611276.

[11]  U. Utah,et al.  Gamma-Hadron Separation Methods for the VERITAS Array of Four Imaging Atmospheric Cherenkov Telescopes , 2006, astro-ph/0604508.

[12]  T. Weekes,et al.  The first VERITAS telescope , 2006, astro-ph/0604119.

[13]  T. Weekes,et al.  A Very High Energy Gamma-Ray Spectrum of 1ES 2344+514 , 2005, astro-ph/0508499.

[14]  T. Weekes,et al.  A Multiwavelength View of the TeV Blazar Markarian 421: Correlated Variability, Flaring, and Spectral Evolution , 2005, astro-ph/0505325.

[15]  G. Giovannini,et al.  A Sample of Low-Redshift BL Lacertae Objects. I. The Radio Data , 2004, astro-ph/0406255.

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

[17]  et al,et al.  Observations of 54 Active Galactic Nuclei with the HEGRA system of Cherenkov telescopes , 2004, astro-ph/0401301.

[18]  Multiwavelength Observations of Strong Flares From the TeV-Blazar 1ES 1959+650 , 2003, astro-ph/0310158.

[19]  J. Stocke,et al.  The Radio Structure of High-Energy-Peaked BL Lacertae Objects , 2003, astro-ph/0302397.

[20]  J. Chiang,et al.  X-Ray Spectral Variability Signatures of Flares in BL Lacertae Objects , 2002, astro-ph/0208238.

[21]  E. Liang,et al.  Photometric monitoring of 12 BL Lacertae objects , 2002 .

[22]  University College Dublin,et al.  Multiwavelength Observations of Markarian 421 in 2001 March: An Unprecedented View on the X-Ray/TeV Correlated Variability , 2007, 0710.4138.

[23]  et al,et al.  Evidence for TeV gamma ray emission from Cassiopeia A , 2001, astro-ph/0102391.

[24]  R. Protheroe,et al.  A proton synchrotron blazar model for flaring in Markarian 501 , 2000, astro-ph/0004052.

[25]  F. Aharonian TeV gamma rays from BL Lac Objects due to synchrotron radiation of extremely high energy protons , 2000, astro-ph/0003159.

[26]  A. Sillanpää,et al.  Two‐dimensional Photometric Decomposition of the TeV BL Lacertae Objects Markarian 421, Markarian 501, and 1ES 2344+514 , 1999 .

[27]  P. Giommi,et al.  Detection of exceptional X-ray spectral variability in the TeV BL Lac 1ES 2344+514 , 1999, astro-ph/9907377.

[28]  H. Lampeitl,et al.  Comparison of techniques to reconstruct VHE gamma-ray showers from multiple stereoscopic Cherenkov images , 1999, astro-ph/9904234.

[29]  W. Gear,et al.  Variations in the broad-band spectra of BL Lac objects: millimetre observations of an X-ray-selected sample , 1999, astro-ph/9902263.

[30]  Edward L. Fitzpatrick,et al.  Correcting for the Effects of Interstellar Extinction , 1998, astro-ph/9809387.

[31]  Milano,et al.  Constraints on the Physical Parameters of TeV Blazars , 1998, astro-ph/9809051.

[32]  P. J. Boyle,et al.  Discovery of Gamma-Ray Emission above 350 GeV from the BL Lacertae Object 1ES 2344+514 , 1998 .

[33]  T. Weekes,et al.  Discovery of >350 GeV Gamma Rays from the BL Lacertae Object 1ES 2344+514 , 1997, astro-ph/9712325.

[34]  Vladimir Vassiliev,et al.  VERITAS: the Very Energetic Radiation Imaging Telescope Array System , 1997 .

[35]  William W. Zhang,et al.  In-orbit performance and calibration of the Rossi X-ray Timing Explorer (RXTE) Proportional Counter Array (PCA) , 1996, Optics & Photonics.

[36]  Christopher D Impey,et al.  The Einstein Slew Survey sample of BL Lacertae objects , 1996 .

[37]  Paolo S. Coppi,et al.  Time-dependent models of magnetized pair plasmas , 1992 .

[38]  David Alexander Plummer,et al.  The Einstein Slew Survey , 1992 .

[39]  Roger D. Blandford,et al.  Relativistic jets as compact radio sources , 1979 .

[40]  R. Gould,et al.  Opacity of the Universe to High-Energy Photons , 1966 .