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Featured researches published by H. Fleischhack.


The Astrophysical Journal | 2014

Spatially Resolving the Very High Energy Emission from MGRO J2019+37 with VERITAS

E. Aliu; T. Aune; B. Behera; M. Beilicke; W. Benbow; K. Berger; R. Bird; A. Bouvier; J. H. Buckley; V. Bugaev; M. Cerruti; X. Chen; L. Ciupik; M. P. Connolly; W. Cui; J. Dumm; Vikram V. Dwarkadas; M. Errando; A. Falcone; S. Federici; Q. Feng; J. P. Finley; H. Fleischhack; P. Fortin; L. Fortson; A. Furniss; N. Galante; G. H. Gillanders; E. V. Gotthelf; S. Griffin

We present very high energy (VHE) imaging of MGRO J2019+37 obtained with the VERITAS observatory. The bright extended (~2°) unidentified Milagro source is located toward the rich star formation region Cygnus-X. MGRO J2019+37 is resolved into two VERITAS sources. The faint, point-like source VER J2016+371 overlaps CTB 87, a filled-center remnant (SNR) with no evidence of a supernova remnant shell at the present time. Its spectrum is well fit in the 0.65-10 TeV energy range by a power-law model with photon index 2.3 ± 0.4. VER J2019+378 is a bright extended (~1°) source that likely accounts for the bulk of the Milagro emission and is notably coincident with PSR J2021+3651 and the star formation region Sh 2–104. Its spectrum in the range 1-30 TeV is well fit with a power-law model of photon index 1.75 ± 0.3, among the hardest values measured in the VHE band, comparable to that observed near Vela-X. We explore the unusual spectrum and morphology in the radio and X-ray bands to constrain possible emission mechanisms for this source.


The Astrophysical Journal | 2014

A THREE-YEAR MULTI-WAVELENGTH STUDY OF THE VERY-HIGH-ENERGY γ-RAY BLAZAR 1ES 0229+200

E. Aliu; S. Archambault; T. Arlen; T. Aune; B. Behera; M. Beilicke; W. Benbow; K. Berger; R. Bird; A. Bouvier; J. H. Buckley; V. Bugaev; K. L. Byrum; M. Cerruti; X. Chen; L. Ciupik; M. P. Connolly; W. Cui; C. Duke; J. Dumm; M. Errando; A. Falcone; S. Federici; Q. Feng; J. P. Finley; H. Fleischhack; P. Fortin; L. Fortson; A. Furniss; N. Galante

The high-frequency-peaked BL Lacertae object 1ES?0229+200 is a relatively distant (z = 0.1396), hard-spectrum (? ~ 2.5), very-high-energy (VHE; E > 100 GeV) emitting ?-ray blazar. VHE measurements of this active galactic nucleus have been used to place constraints on the intensity of the extragalactic background light and the intergalactic magnetic field (IGMF). A multi-wavelength study of this object centered around VHE observations by Very Energetic Radiation Imaging Telescope Array System (VERITAS) is presented. This study obtained, over a period of three years, an 11.7 standard deviation detection and an average integral flux F(E > 300 GeV) = (23.3 ? 2.8stat ? 5.8sys) ? 10?9?photons?m?2?s?1, or 1.7% of the Crab Nebulas flux (assuming the Crab Nebula spectrum measured by H.E.S.S). Supporting observations from Swift and RXTE are analyzed. The Swift observations are combined with previously published Fermi observations and the VHE measurements to produce an overall spectral energy distribution which is then modeled assuming one-zone synchrotron-self-Compton emission. The ?2 probability of the TeV flux being constant is 1.6%. This, when considered in combination with measured variability in the X-ray band, and the demonstrated variability of many TeV blazars, suggests that the use of blazars such as 1ES?0229+200 for IGMF studies may not be straightforward and challenges models that attribute hard TeV spectra to secondary ?-ray production along the line of sight.


Monthly Notices of the Royal Astronomical Society | 2014

The most powerful flaring activity from the NLSy1 PMN J0948+0022

F. D'Ammando; M. Orienti; J. Finke; C. M. Raiteri; T. Hovatta; Josefin Larsson; W. Max-Moerbeck; J. S. Perkins; Anthony C. S. Readhead; J. L. Richards; M. Beilicke; W. Benbow; K. Berger; R. Bird; V. Bugaev; J. V. Cardenzana; M. Cerruti; X. Chen; L. Ciupik; H. J. Dickinson; J. D. Eisch; M. Errando; A. Falcone; J. P. Finley; H. Fleischhack; P. Fortin; L. Fortson; A. Furniss; L. Gerard; G. H. Gillanders

We report on multifrequency observations performed during 2012 December–2013 August of the first narrow-line Seyfert 1 galaxy detected in γ-rays, PMN J0948+0022 (z = 0.5846). A γ-ray flare was observed by the Large Area Telescope on board Fermi during 2012 December–2013 January, reaching a daily peak flux in the 0.1–100 GeV energy range of (155 ± 31) × 10−8 ph cm−2 s−1 on 2013 January 1, corresponding to an apparent isotropic luminosity of ∼1.5 × 1048 erg s−1. The γ-ray flaring period triggered Swift and Very Energetic Radiation Imaging Telescope Array System (VERITAS) observations in addition to radio and optical monitoring by Owens Valley Radio Observatory, Monitoring Of Jets in Active galactic nuclei with VLBA Experiments, and Catalina Real-time Transient Survey. A strong flare was observed in optical, UV, and X-rays on 2012 December 30, quasi-simultaneously to the γ-ray flare, reaching a record flux for this source from optical to γ-rays. VERITAS observations at very high energy (E > 100 GeV) during 2013 January 6–17 resulted in an upper limit of F>0.2 TeV < 4.0 × 10−12 ph cm−2 s−1. We compared the spectral energy distribution (SED) of the flaring state in 2013 January with that of an intermediate state observed in 2011. The two SEDs, modelled as synchrotron emission and an external Compton scattering of seed photons from a dust torus, can be modelled by changing both the electron distribution parameters and the magnetic field.


The Astrophysical Journal | 2015

VERITAS DETECTION OF γ-RAY FLARING ACTIVITY FROM THE BL LAC OBJECT 1ES 1727+502 DURING BRIGHT MOONLIGHT OBSERVATIONS

S. Archambault; A. Archer; M. Beilicke; W. Benbow; R. Bird; J. Biteau; A. Bouvier; V. Bugaev; J. V. Cardenzana; M. Cerruti; X. Chen; L. Ciupik; M. P. Connolly; W. Cui; H. J. Dickinson; J. Dumm; J. D. Eisch; M. Errando; A. Falcone; Q. Feng; J. P. Finley; H. Fleischhack; P. Fortin; L. Fortson; A. Furniss; G. H. Gillanders; S. Griffin; S. T. Griffiths; J. Grube; G. Gyuk

During moonlit nights, observations with ground-based Cherenkov telescopes at very high energies (VHEs, GeV) are constrained since the photomultiplier tubes (PMTs) in the telescope camera are extremely sensitive to the background moonlight. Observations with the VERITAS telescopes in the standard configuration are performed only with a moon illumination less than 35% of full moon. Since 2012, the VERITAS collaboration has implemented a new observing mode under bright moonlight, by either reducing the voltage applied to the PMTs (reduced-high-voltage; RHV configuration), or by utilizing UV-transparent filters. While these operating modes result in lower sensitivity and increased energy thresholds, the extension of the available observing time is useful for monitoring variable sources such as blazars and sources requiring spectral measurements at the highest energies. In this paper we report the detection of γ-ray flaring activity from the BL Lac object 1ES 1727+502 during RHV observations. This detection represents the first evidence of VHE variability from this blazar. The integral flux is above 250 GeV, which is about five times higher than the low-flux state. The detection triggered additional VERITAS observations during standard dark-time. Multiwavelength observations with the FLWO 48″ telescope, and the Swift and Fermi satellites are presented and used to produce the first spectral energy distribution (SED) of this object during γ-ray flaring activity. The SED is then fitted with a standard synchrotron-self-Compton model, placing constraints on the properties of the emitting region and of the acceleration mechanism at the origin of the relativistic particle population in the jet.


The Astrophysical Journal | 2014

Constraints on Very High Energy Emission from GRB 130427A

E. Aliu; T. Aune; A. Barnacka; M. Beilicke; W. Benbow; K. Berger; J. Biteau; J. H. Buckley; V. Bugaev; K. L. Byrum; J. V. Cardenzana; M. Cerruti; X. Chen; L. Ciupik; V. Connaughton; W. Cui; H. J. Dickinson; J. D. Eisch; M. Errando; A. Falcone; S. Federici; Q. Feng; J. P. Finley; H. Fleischhack; P. Fortin; L. Fortson; A. Furniss; N. Galante; G. H. Gillanders; S. Griffin

Prompt emission from the very fluent and nearby (z=0.34) gamma-ray burst GRB 130427A was detected by several orbiting telescopes and by ground-based, wide-field-of-view optical transient monitors. Apart from the intensity and proximity of this GRB, it is exceptional due to the extremely long-lived high-energy (100 MeV to 100 GeV) gamma-ray emission, which was detected by the Large Area Telescope on the Fermi Gamma-ray Space Telescope for ~70 ks after the initial burst. The persistent, hard-spectrum, high-energy emission suggests that the highest-energy gamma rays may have been produced via synchrotron self-Compton processes though there is also evidence that the high-energy emission may instead be an extension of the synchrotron spectrum. VERITAS, a ground-based imaging atmospheric Cherenkov telescope array, began follow-up observations of GRB 130427A ~71 ks (~20 hr) after the onset of the burst. The GRB was not detected with VERITAS; however, the high elevation of the observations, coupled with the low redshift of the GRB, make VERITAS a very sensitive probe of the emission from GRB 130427A for E > 100 GeV. The non-detection and consequent upper limit derived place constraints on the synchrotron self-Compton model of high-energy gamma-ray emission from this burst.


The Astrophysical Journal | 2016

A SEARCH for BRIEF OPTICAL FLASHES ASSOCIATED with the SETI TARGET KIC 8462852

A. U. Abeysekara; S. Archambault; A. Archer; W. Benbow; R. Bird; M. Buchovecky; J. H. Buckley; K. L. Byrum; J. V. Cardenzana; M. Cerruti; X. Chen; J. L. Christiansen; L. Ciupik; W. Cui; H. J. Dickinson; J. D. Eisch; M. Errando; A. Falcone; D. J. Fegan; Q. Feng; J. P. Finley; H. Fleischhack; P. Fortin; L. Fortson; A. Furniss; G. H. Gillanders; S. Griffin; J. Grube; G. Gyuk; M. Hütten

This research is supported by grants from the U.S. Department of Energy Office of Science, the U.S. National Science Foundation, and the Smithsonian Institution, and by NSERC in Canada.


The Astrophysical Journal | 2014

Very-high Energy Observations of the Galactic Center Region by VERITAS in 2010-2012

A. Archer; A. Barnacka; M. Beilicke; W. Benbow; K. Berger; R. Bird; J. Biteau; J. H. Buckley; V. Bugaev; K. L. Byrum; J. V. Cardenzana; M. Cerruti; W. Chen; X. Chen; L. Ciupik; M. P. Connolly; W. Cui; H. J. Dickinson; J. Dumm; J. D. Eisch; A. Falcone; S. Federici; Q. Feng; J. P. Finley; H. Fleischhack; L. Fortson; A. Furniss; N. Galante; S. Griffin; S. T. Griffiths

The Galactic center is an interesting region for high-energy (0.1-100 GeV) and very-high-energy (E > 100 GeV) gamma-ray observations. Potential sources of GeV/TeV gamma-ray emission have been suggested, e.g., the accretion of matter onto the supermassive black hole, cosmic rays from a nearby supernova remnant (e.g., Sgr A East), particle acceleration in a plerion, or the annihilation of dark matter particles. The Galactic center has been detected by EGRET and by Fermi/LAT in the MeV/GeV energy band. At TeV energies, the Galactic center was detected with moderate significance by the CANGAROO and Whipple 10 m telescopes and with high significance by H.E.S.S., MAGIC, and VERITAS. We present the results from three years of VERITAS observations conducted at large zenith angles resulting in a detection of the Galactic center on the level of 18 standard deviations at energies above similar to 2.5 TeV. The energy spectrum is derived and is found to be compatible with hadronic, leptonic, and hybrid emission models discussed in the literature. Future, more detailed measurements of the high-energy cutoff and better constraints on the high-energy flux variability will help to refine and/or disentangle the individual models.


The Astrophysical Journal | 2017

Gamma-Ray Observations of Tycho’s Supernova Remnant with VERITAS and Fermi

S. Archambault; A. Archer; W. Benbow; R. Bird; E. Bourbeau; M. Buchovecky; J. H. Buckley; V. Bugaev; M. Cerruti; M. P. Connolly; W. Cui; Vikram V. Dwarkadas; M. Errando; A. Falcone; Q. Feng; J. P. Finley; H. Fleischhack; L. Fortson; A. Furniss; S. Griffin; M. Hütten; D. Hanna; J. Holder; C. A. Johnson; P. Kaaret; P. Kar; N. Kelley-Hoskins; M. Kertzman; D. Kieda; M. Krause

High-energy gamma-ray emission from supernova remnants (SNRs) has provided a unique perspective for studies of Galactic cosmic-ray acceleration. Tycho’s SNR is a particularly good target because it is a young, type Ia SNR that is well-studied over a wide range of energies and located in a relatively clean environment. Since the detection of gamma-ray emission from Tycho’s SNR by VERITAS and Fermi -LAT, there have been several theoretical models proposed to explain its broadband emission and high-energy morphology. We report on an update to the gamma-ray measurements of Tycho’s SNR with 147 hours of VERITAS and 84 months of Fermi -LAT observations, which represents about a factor of two increase in exposure over previously published data. About half of the VERITAS data benefited from a camera upgrade, which has made it possible to extend the TeV measurements toward lower energies. The TeV spectral index measured by VERITAS is consistent with previous results, but the expanded energy range softens a straight power-law fit. At energies higher than 400 GeV, the power-law index is 2.92±0.42stat±0.20sys. It is also softer than the spectral index in the GeV energy range, 2.14±0.09stat ±0.02sys, measured by this study using Fermi–LAT data. The centroid position of the gamma-ray emission is coincident with the center of the remnant, as well as with the centroid measurement of Fermi–LAT above 1 GeV. The results are consistent with an SNR shell origin of the emission, as many models assume. The updated spectrum points to a lower maximum particle energy than has been suggested previously. Subject headings: supernova remnant: general – supernova remnant: individual(Tycho’s SNR) – gamma


The Astronomical Journal | 2016

Upper limits from five years of blazar observations with the VERITAS Cherenkov telescopes

S. Archambault; A. Archer; W. Benbow; R. Bird; J. Biteau; M. Buchovecky; James Henry Buckley; V. Bugaev; K. L. Byrum; M. Cerruti; X. Chen; L. Ciupik; M. P. Connolly; W. Cui; J. D. Eisch; M. Errando; A. Falcone; Q. Feng; J. P. Finley; H. Fleischhack; P. Fortin; L. Fortson; A. Furniss; G. H. Gillanders; S. Griffin; J. Grube; G. Gyuk; M. Hütten; N. Håkansson; D. Hanna

Between the beginning of its full-scale scientific operations in 2007 and 2012, the VERITAS Cherenkov telescope array observed more than 130 blazars; of these, 26 were detected as very-high-energy (VHE; E>100 GeV) -ray sources. In this work, we present the analysis results of a sample of 114 undetected objects. The observations constitute a total live-time of 570 hours. The sample includes several unidentified Fermi-Large Area Telescope (LAT) sources (located at high Galactic latitude) as well as all the sources from the second Fermi-LAT catalog which are contained within the field of view of the VERITAS observations. We have also performed optical spectroscopy measurements in order to estimate the redshift of some of these blazars that do not have a spectroscopic distance estimate. We present new optical spectra from the Kast instrument on the Shane telescope at the Lick observatory for 18 blazars included in this work, which allowed for the successful measurement or constraint on the redshift of four of them. For each of the blazars included in our sample we provide the flux upper limit in the VERITAS energy band. We also study the properties of the significance distributions and we present the result of a stacked analysis of the data-set, which shows a 4 excess.


The Astrophysical Journal | 2016

TeV Gamma-ray Observations of The Galactic Center Ridge By VERITAS

A. Archer; W. Benbow; R. Bird; M. Buchovecky; James Henry Buckley; V. Bugaev; K. L. Byrum; J. V. Cardenzana; M. Cerruti; X. Chen; L. Ciupik; E. Collins-Hughes; M. P. Connolly; J. D. Eisch; A. Falcone; Q. Feng; J. P. Finley; H. Fleischhack; A. Flinders; L. Fortson; A. Furniss; G. H. Gillanders; S. Griffin; J. Grube; G. Gyuk; N. Håkansson; D. Hanna; J. Holder; T. B. Humensky; M. Hütten

The Galactic Center Ridge has been observed extensively in the past by both GeV and TeV gamma-ray instruments revealing a wealth of structure, including a diffuse component as well as the point sources G0.9+0.1 (a composite supernova remnant) and Sgr A* (believed to be associated with the supermassive black hole located at the center of our Galaxy). Previous very high energy (VHE) gamma-ray observations with the H.E.S.S. experiment have also detected an extended TeV gamma-ray component along the Galactic plane in the >300 GeV gamma-ray regime. Here we report on observations of the Galactic Center Ridge from 2010-2014 by the VERITAS telescope array in the >2 TeV energy range. From these observations we 1.) provide improved measurements of the differential energy spectrum for Sgr A* in the >2 TeV gamma-ray regime, 2.) provide a detection in the >2 TeV gamma-ray emission from the composite SNR G0.9+0.1 and an improved determination of its multi-TeV gamma-ray energy spectrum, 3.) report on the detection of VER J1746-289, a localized enhancement of >2 TeV gamma-ray emission along the Galactic plane.

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A. Furniss

California State University

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L. Fortson

University of Minnesota

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A. Falcone

Pennsylvania State University

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V. Bugaev

Washington University in St. Louis

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A. Archer

Washington University in St. Louis

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