Niels Jørgen Stenfeldt Westergaard
Technical University of Denmark
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The Astrophysical Journal | 2013
Fiona A. Harrison; William W. Craig; Finn Erland Christensen; Charles J. Hailey; William W. Zhang; Steven E. Boggs; Daniel Stern; W. Rick Cook; Karl Forster; Paolo Giommi; Brian W. Grefenstette; Yunjin Kim; Takao Kitaguchi; Jason E. Koglin; Kristin K. Madsen; Peter H. Mao; Hiromasa Miyasaka; Kaya Mori; Matteo Perri; Michael J. Pivovaroff; S. Puccetti; V. Rana; Niels Jørgen Stenfeldt Westergaard; Jason Willis; Andreas Zoglauer; Hongjun An; Matteo Bachetti; Eric C. Bellm; Varun Bhalerao; Nicolai F. Brejnholt
The Nuclear Spectroscopic Telescope Array (NuSTAR) is a National Aeronautics and Space Administration (NASA) Small Explorer mission that carried the first focusing hard X-ray (6-79 keV) telescope into orbit. It was launched on a Pegasus rocket into a low-inclination Earth orbit on June 13, 2012, from Reagan Test Site, Kwajalein Atoll. NuSTAR will carry out a two-year primary science mission. The NuSTAR observatory is composed of the X-ray instrument and the spacecraft. The NuSTAR spacecraft is three-axis stabilized with a single articulating solar array based on Orbital Sciences Corporations LEOStar-2 design. The NuSTAR science instrument consists of two co-aligned grazing incidence optics focusing on to two shielded solid state CdZnTe pixel detectors. The instrument was launched in a compact, stowed configuration, and after launch, a 10-meter mast was deployed to achieve a focal length of 10.15 m. The NuSTAR instrument provides sub-arcminute imaging with excellent spectral resolution over a 12-arcminute field of view. The NuSTAR observatory will be operated out of the Mission Operations Center (MOC) at UC Berkeley. Most science targets will be viewed for a week or more. The science data will be transferred from the UC Berkeley MOC to a Science Operations Center (SOC) located at the California Institute of Technology (Caltech). In this paper, we will describe the mission architecture, the technical challenges during the development phase, and the post-launch activities.
Nature | 2014
Brian W. Grefenstette; Fiona A. Harrison; S. E. Boggs; Stephen P. Reynolds; Christopher L. Fryer; K. K. Madsen; Daniel R. Wik; Andreas Zoglauer; C I Ellinger; D. M. Alexander; Hongjun An; Didier Barret; Finn Erland Christensen; William W. Craig; K. Forster; P. Giommi; C. J. Hailey; A. Hornstrup; V. M. Kaspi; Takao Kitaguchi; Jason E. Koglin; Peter H. Mao; Hiromasa Miyasaka; Kaya Mori; Matteo Perri; M. Pivovaroff; S. Puccetti; V. Rana; D. Stern; Niels Jørgen Stenfeldt Westergaard
Asymmetry is required by most numerical simulations of stellar core-collapse explosions, but the form it takes differs significantly among models. The spatial distribution of radioactive 44Ti, synthesized in an exploding star near the boundary between material falling back onto the collapsing core and that ejected into the surrounding medium, directly probes the explosion asymmetries. Cassiopeia A is a young, nearby, core-collapse remnant from which 44Ti emission has previously been detected but not imaged. Asymmetries in the explosion have been indirectly inferred from a high ratio of observed 44Ti emission to estimated 56Ni emission, from optical light echoes, and from jet-like features seen in the X-ray and optical ejecta. Here we report spatial maps and spectral properties of the 44Ti in Cassiopeia A. This may explain the unexpected lack of correlation between the 44Ti and iron X-ray emission, the latter being visible only in shock-heated material. The observed spatial distribution rules out symmetric explosions even with a high level of convective mixing, as well as highly asymmetric bipolar explosions resulting from a fast-rotating progenitor. Instead, these observations provide strong evidence for the development of low-mode convective instabilities in core-collapse supernovae.
Astrophysical Journal Supplement Series | 2015
Kristin K. Madsen; Fiona A. Harrison; Craig B. Markwardt; Hongjun An; Brian W. Grefenstette; Matteo Bachetti; Hiromasa Miyasaka; Takao Kitaguchi; Varun Bhalerao; S. E. Boggs; Finn Erland Christensen; William W. Craig; Karl Forster; F. Fuerst; Charles J. Hailey; Matteo Perri; S. Puccetti; V. Rana; Daniel Stern; D. J. Walton; Niels Jørgen Stenfeldt Westergaard; William W. Zhang
We present the calibration of the Nuclear Spectroscopic Telescope Array (NuSTAR) X-ray satellite. We used the Crab as the primary effective area calibrator and constructed a piece-wise linear spline function to modify the vignetting response. The achieved residuals for all off-axis angles and energies, compared to the assumed spectrum, are typically better than ±2% up to 40 keV and 5%–10% above due to limited counting statistics. An empirical adjustment to the theoretical two-dimensional point-spread function (PSF) was found using several strong point sources, and no increase of the PSF half-power diameter has been observed since the beginning of the mission. We report on the detector gain calibration, good to 60 eV for all grades, and discuss the timing capabilities of the observatory, which has an absolute timing of ±3 ms. Finally, we present cross-calibration results from two campaigns between all the major concurrent X-ray observatories (Chandra, Swift, Suzaku, and XMM-Newton), conducted in 2012 and 2013 on the sources 3C 273 and PKS 2155-304, and show that the differences in measured flux is within ~10% for all instruments with respect to NuSTAR.
The Astrophysical Journal | 2014
Daniel R. Wik; A. Hornstrup; S. Molendi; G. M. Madejski; Fiona A. Harrison; Andreas Zoglauer; Brian W. Grefenstette; F. Gastaldello; Kristin K. Madsen; Niels Jørgen Stenfeldt Westergaard; Desiree Della Monica Ferreira; Takao Kitaguchi; Kristian Pedersen; Steven E. Boggs; Finn Erland Christensen; William W. Craig; Charles J. Hailey; Daniel Stern; William W. Zhang
The search for diffuse non-thermal inverse Compton (IC) emission from galaxy clusters at hard X-ray energies has been undertaken with many instruments, with most detections being either of low significance or controversial. Because all prior telescopes sensitive at E > 10 keV do not focus light and have degree-scale fields of view, their backgrounds are both high and difficult to characterize. The associated uncertainties result in lower sensitivity to IC emission and a greater chance of false detection. In this work, we present 266 ks NuSTAR observations of the Bullet cluster, which is detected in the energy range 3-30 keV. NuSTARs unprecedented hard X-ray focusing capability largely eliminates confusion between diffuse IC and point sources; however, at the highest energies, the background still dominates and must be well understood. To this end, we have developed a complete background model constructed of physically inspired components constrained by extragalactic survey field observations, the specific parameters of which are derived locally from data in non-source regions of target observations. Applying the background model to the Bullet cluster data, we find that the spectrum is well—but not perfectly—described as an isothermal plasma with kT = 14.2 ± 0.2 keV. To slightly improve the fit, a second temperature component is added, which appears to account for lower temperature emission from the cool core, pushing the primary component to kT ~ 15.3 keV. We see no convincing need to invoke an IC component to describe the spectrum of the Bullet cluster, and instead argue that it is dominated at all energies by emission from purely thermal gas. The conservatively derived 90% upper limit on the IC flux of 1.1 × 10^(–12) erg s^(–1) cm^(–2) (50-100 keV), implying a lower limit on B ≳ 0.2 μG, is barely consistent with detected fluxes previously reported. In addition to discussing the possible origin of this discrepancy, we remark on the potential implications of this analysis for the prospects for detecting IC in galaxy clusters in the future.
The Astrophysical Journal | 2015
M. Hayashida; Krzysztof Nalewajko; G. M. Madejski; Marek Sikora; R. Itoh; M. Ajello; R. D. Blandford; S. Buson; J. Chiang; Yasushi Fukazawa; A. K. Furniss; Claudia M. Urry; I. Hasan; Fiona A. Harrison; D. M. Alexander; M. Baloković; Didier Barret; S. E. Boggs; Finn Erland Christensen; W. W. Craig; K. Forster; Paolo Giommi; Brian W. Grefenstette; C. Hailey; A. Hornstrup; Takao Kitaguchi; Jason E. Koglin; K. K. Madsen; Peter H. Mao; Hiromasa Miyasaka
We report the results of a multiband observing campaign on the famous blazar 3C 279 conducted during a phase of increased activity from 2013 December to 2014 April, including first observations of it with NuSTAR. The gamma-ray emission of the source measured by Fermi-LAT showed multiple distinct flares reaching the highest flux level measured in this object since the beginning of the Fermi mission, with F(E > 100 MeV) of 10^(-5) photons cm^(-2) s^(-1), and with a flux-doubling time scale as short as 2 hr. The gamma-ray spectrum during one of the flares was very hard, with an index of Gamma(gamma) = 1.7 +/- 0.1, which is rarely seen in flat-spectrum radio quasars. The lack of concurrent optical variability implies a very high Compton dominance parameter L-gamma/L-syn > 300. Two 1 day NuSTAR observations with accompanying Swift pointings were separated by 2 weeks, probing different levels of source activity. While the 0.5 - 70 keV X-ray spectrum obtained during the first pointing, and fitted jointly with Swift-XRT is well-described by a simple power law, the second joint observation showed an unusual spectral structure: the spectrum softens by Delta Gamma(X) similar or equal to 0.4 at similar to 4 keV. Modeling the broadband spectral energy distribution during this flare with the standard synchrotron plus inverse-Compton model requires: (1) the location of the gamma-ray emitting region is comparable with the broad-line region radius, (2) a very hard electron energy distribution index p similar or equal to 1, (3) total jet power significantly exceeding the accretion-disk luminosity L-j/L-d greater than or similar to 10, and (4) extremely low jet magnetization with L-B/L-j less than or similar to 10^(-4). We also find that single-zone models that match the observed gamma-ray and optical spectra cannot satisfactorily explain the production of X-ray emission.
Science | 2015
S. E. Boggs; Fiona A. Harrison; Hiromasa Miyasaka; Brian W. Grefenstette; Andreas Zoglauer; Chris L. Fryer; Stephen P. Reynolds; D. M. Alexander; Hongjun An; Didier Barret; Finn Erland Christensen; William W. Craig; K. Forster; P. Giommi; Charles J. Hailey; A. Hornstrup; Takao Kitaguchi; Jason E. Koglin; Kristin K. Madsen; Peter H. Mao; Kaya Mori; Matteo Perri; Michael J. Pivovaroff; S. Puccetti; V. Rana; D. Stern; Niels Jørgen Stenfeldt Westergaard; William W. Zhang
Stellar metals shine toward our eyes only Taking a different look at a familiar star may still yield surprises. Boggs et al. trained the x-ray vision of the NuSTAR observatory on the well-studied supernova 1987A. Core-collapse explosions such as SN 1987A produce a titanium isotope, 44Ti, whose radioactive decay yields hard x-ray emission lines. All the emission associated with 44Ti appears to be from material moving toward us, with none moving away. This implies that the explosion was not symmetric. These findings help to explain the mechanics of SN 1987A and of core-collapse supernovae in general. Science, this issue p. 670 Asymmetric signatures of radioactive decay are seen from a metal deep within a supernova. In core-collapse supernovae, titanium-44 (44Ti) is produced in the innermost ejecta, in the layer of material directly on top of the newly formed compact object. As such, it provides a direct probe of the supernova engine. Observations of supernova 1987A (SN1987A) have resolved the 67.87- and 78.32–kilo–electron volt emission lines from decay of 44Ti produced in the supernova explosion. These lines are narrow and redshifted with a Doppler velocity of ~700 kilometers per second, direct evidence of large-scale asymmetry in the explosion.
The Astrophysical Journal | 2016
Fiona A. Harrison; James Aird; F. Civano; G. B. Lansbury; J. R. Mullaney; D. R. Ballantyne; D. M. Alexander; D. Stern; M. Ajello; Didier Barret; F. E. Bauer; M. Baloković; W. N. Brandt; M. Brightman; S. E. Boggs; Finn Erland Christensen; A. Comastri; William W. Craig; A. Del Moro; K. Forster; P. Gandhi; Paolo Giommi; Brian W. Grefenstette; Charles J. Hailey; R. C. Hickox; A. Hornstrup; Takao Kitaguchi; Jason E. Koglin; B. Luo; Kristin K. Madsen
We present the 3–8 keV and 8–24 keV number counts of active galactic nuclei (AGNs) identified in the Nuclear Spectroscopic Telescope Array (NuSTAR) extragalactic surveys. NuSTAR has now resolved 33%–39% of the X-ray background in the 8–24 keV band, directly identifying AGNs with obscuring columns up to ~10^(25) cm^(-2). In the softer 3–8 keV band the number counts are in general agreement with those measured by XMM-Newton and Chandra over the flux range 5 x 10^(-15) ≾S(3–8 keV)/erg s^(-1) cm^(-2) ≾10^(-12) probed by NuSTAR. In the hard 8–24 keV band NuSTAR probes fluxes over the range 2 x 10^(-14) ≾ S(8–24 keV)/ erg s^(-1) cm^(-2) ≾ 10^_12), a factor ~100 fainter than previous measurements. The 8–24 keV number counts match predictions from AGN population synthesis models, directly confirming the existence of a population of obscured and/or hard X-ray sources inferred from the shape of the integrated cosmic X-ray background. The measured NuSTAR counts lie significantly above simple extrapolation with a Euclidian slope to low flux of the Swift/BAT 15–55 keV number counts measured at higher fluxes (S(15–55 keV) ≳10^(−11) erg s^(-1) cm^(-2)), reflecting the evolution of the AGN population between the Swift/BAT local (z < 0.1) sample and NuSTARs z ~ 1 sample. CXB synthesis models, which account for AGN evolution, lie above the Swift/BAT measurements, suggesting that they do not fully capture the evolution of obscured AGNs at low redshifts.
The Astrophysical Journal | 2015
Kaya Mori; Charles J. Hailey; Roman A. Krivonos; JaeSub Hong; G. Ponti; F. E. Bauer; K. Perez; Melania Nynka; Shuo Zhang; John A. Tomsick; D. M. Alexander; F. K. Baganoff; Didier Barret; Steven E. Boggs; Alicia M. Canipe; Finn Erland Christensen; William W. Craig; Karl Forster; Paolo Giommi; Brian W. Grefenstette; Jonathan E. Grindlay; Fiona A. Harrison; A. Hornstrup; Takao Kitaguchi; Jason E. Koglin; Vy Luu; K. K. Madsen; Peter H. Mao; Hiromasa Miyasaka; Matteo Perri
We present the first sub-arcminute images of the Galactic Center above 10 keV, obtained with NuSTAR. NuSTAR resolves the hard X-ray source IGR J17456–2901 into non-thermal X-ray filaments, molecular clouds, point sources, and a previously unknown central component of hard X-ray emission (CHXE). NuSTAR detects four non-thermal X-ray filaments, extending the detection of their power-law spectra with Γ ~ 1.3–2.3 up to ~50 keV. A morphological and spectral study of the filaments suggests that their origin may be heterogeneous, where previous studies suggested a common origin in young pulsar wind nebulae (PWNe). NuSTAR detects non-thermal X-ray continuum emission spatially correlated with the 6.4 keV Fe Kα fluorescence line emission associated with two Sgr A molecular clouds: MC1 and the Bridge. Broadband X-ray spectral analysis with a Monte-Carlo based X-ray reflection model self-consistently determined their intrinsic column density (~10^(23) cm^(−2)), primary X-ray spectra (power-laws with Γ ~ 2) and set a lower limit of the X-ray luminosity of Sgr A* flare illuminating the Sgr A clouds to L_X ≳ 10^(38) erg s^(−1). Above ~20 keV, hard X-ray emission in the central 10 pc region around Sgr A* consists of the candidate PWN G359.95–0.04 and the CHXE, possibly resulting from an unresolved population of massive CVs with white dwarf masses M_(WD) ~ 0.9 M_⊙. Spectral energy distribution analysis suggests that G359.95–0.04 is likely the hard X-ray counterpart of the ultra-high gamma-ray source HESS J1745–290, strongly favoring a leptonic origin of the GC TeV emission.
The Astrophysical Journal | 2016
JaeSub Hong; Kaya Mori; Charles J. Hailey; Melania Nynka; Shuo Zhang; E. V. Gotthelf; Francesca M. Fornasini; Roman A. Krivonos; F. E. Bauer; K. Perez; John A. Tomsick; Arash Bodaghee; Jeng-Lun Chiu; M. Clavel; Daniel Stern; Jonathan E. Grindlay; D. M. Alexander; T. Aramaki; F. K. Baganoff; Didier Barret; Steven E. Boggs; Alicia M. Canipe; Finn Erland Christensen; William W. Craig; Meera A. Desai; Karl Forster; Paolo Giommi; Brian W. Grefenstette; Fiona A. Harrison; Dooran Hong
We present the first survey results of hard X-ray point sources in the Galactic Center (GC) region by NuSTAR. We have discovered 70 hard (3–79 keV) X-ray point sources in a 0.6 deg^2 region around Sgr A* with a total exposure of 1.7 Ms, and 7 sources in the Sgr B2 field with 300 ks. We identify clear Chandra counterparts for 58 NuSTAR sources and assign candidate counterparts for the remaining 19. The NuSTAR survey reaches X-ray luminosities of ∼4× and ∼8 × 10^(32) erg s^(-1) at the GC (8 kpc) in the 3–10 and 10–40 keV bands, respectively. The source list includes three persistent luminous X-ray binaries (XBs) and the likely run-away pulsar called the Cannonball. New source-detection significance maps reveal a cluster of hard (> 10 keV) X-ray sources near the Sgr A diffuse complex with no clear soft X-ray counterparts. The severe extinction observed in the Chandra spectra indicates that all the NuSTAR sources are in the central bulge or are of extragalactic origin. Spectral analysis of relatively bright NuSTAR sources suggests that magnetic cataclysmic variables constitute a large fraction (> 40%–60%). Both spectral analysis and logN–logS distributions of the NuSTAR sources indicate that the X-ray spectra of the NuSTAR sources should have kT > 20 keV on average for a single temperature thermal plasma model or an average photon index of Γ = 1.5–2 for a power-law model. These findings suggest that the GC X-ray source population may contain a larger fraction of XBs with high plasma temperatures than the field population.
Proceedings of SPIE | 2011
Finn Erland Christensen; Anders Clemen Jakobsen; Nicolai F. Brejnholt; Kristin K. Madsen; A. Hornstrup; Niels Jørgen Stenfeldt Westergaard; Joan Momberg; Jason E. Koglin; Anne M. Fabricant; Marcela Stern; William W. Craig; Michael J. Pivovaroff; David L. Windt
The NuSTAR mission will be the first mission to carry a hard X-ray(5-80 keV) focusing telescope to orbit. The optics are based on the use of multilayer coated thin slumped glass. Two different material combinations were used for the flight optics, namely W/Si and Pt/C. In this paper we describe the entire coating effort including the final coating design that was used for the two flight optics. We also present data on the performance verification of the coatings both on Si witness samples as well as on individual flight mirrors.