11 research outputs found
Light curves and spectra from a thermonuclear explosion of a white dwarf merger
This is the final version of the article. Available from the publisher via the DOI in this record.Double-degenerate (DD) mergers of carbon-oxygen white dwarfs have recently emerged as a leading candidate for normal Type Ia supernovae (SNe Ia). However, many outstanding questions surround DD mergers, including the characteristics of their light curves and spectra. We have recently identified a spiral instability in the post-merger phase of DD mergers and demonstrated that this instability self-consistently leads to detonation in some cases. We call this the spiral merger SN Ia model. Here, we utilize the SuperNu radiative transfer software to calculate three-dimensional synthetic light curves and spectra of the spiral merger simulation with a system mass of 2.1 from Kashyap et al. Because of their large system masses, both violent and spiral merger light curves are slowly declining. The spiral merger resembles very slowly declining SNe Ia, including SN 2001ay, and provides a more natural explanation for its observed properties than other SN Ia explosion models. Previous synthetic light curves and spectra of violent DD mergers demonstrate a strong dependence on viewing angle, which is in conflict with observations. Here, we demonstrate that the light curves and spectra of the spiral merger are less sensitive to the viewing angle than violent mergers, in closer agreement with observation. We find that the spatial distribution of 56Ni and IMEs follows a characteristic hourglass shape. We discuss the implications of the asymmetric distribution of 56Ni for the early-time gamma-ray observations of 56Ni from SN 2014J. We suggest that DD mergers that agree with the light curves and spectra of normal SNe Ia will likely require a lower system mass.This work is supported in part
at the University of Chicago by the National Science
Foundation under grants AST-0909132, PHY-0822648 (JINA,
Joint Institute for Nuclear Astrophysics), and PHY–1430152
(JINA-CEE, Joint Institute for Nuclear Astrophysics). This
work used the Extreme Science and Engineering Discovery
Environment (XSEDE), which is supported by National
Science Foundation grant number ACI-1053575. Simulations
at UMass Dartmouth were performed on a computer cluster
supported by NSF grant CNS-0959382 and AFOSR DURIP
grant FA9550-10-1-0354. The work of E.G.-B., G.A.-S., and P.
L.-A. was partially funded by the MINECO AYA2014-59084-
P grant and by the AGAUR. This research has made use of
NASA’s Astrophysics Data System and the yt astrophysics
analysis software suit
Serendipitous discoveries of kilonovae in the LSST main survey: maximizing detections of sub-threshold gravitational wave events
We investigate the ability of the Large Synoptic Survey Telescope (LSST) to discover kilonovae (kNe) from binary neutron star (BNS) and neutron star–black hole (NSBH) mergers, focusing on serendipitous detections in the Wide-Fast-Deep (WFD) survey. We simulate observations of kNe with proposed LSST survey strategies, focusing on cadence choices that are compatible with the broader LSST cosmology programme. If all kNe are identical to GW170817, we find the baseline survey strategy will yield 58 kNe over the survey lifetime. If we instead assume a representative population model of BNS kNe, we expect to detect only 27 kNe. However, we find the choice of survey strategy significantly impacts these numbers and can increase them to 254 and 82 kNe over the survey lifetime, respectively. This improvement arises from an increased cadence of observations between different filters with respect to the baseline. We then consider the detectability of these BNS mergers by the Advanced LIGO/Virgo (ALV) detector network. If the optimal survey strategy is adopted, 202 of the GW170817-like kNe and 56 of the BNS population model kNe are detected with LSST but are below the threshold for detection by the ALV network. This represents, for both models, an increase by a factor greater than 4.5 in the number of detected sub-threshold events over the baseline strategy. These sub-threshold events would provide an opportunity to conduct electromagnetic-triggered searches for signals in gravitational-wave data and assess selection effects in measurements of the Hubble constant from standard sirens, e.g. viewing angle effects
The Emergence of a Lanthanide-rich Kilonova Following the Merger of Two Neutron Stars
We report the discovery and monitoring of the near-infrared counterpart
(AT2017gfo) of a binary neutron-star merger event detected as a gravitational
wave source by Advanced LIGO/Virgo (GW170817) and as a short gamma-ray burst by
Fermi/GBM and Integral/SPI-ACS (GRB170817A). The evolution of the transient
light is consistent with predictions for the behaviour of a
"kilonova/macronova", powered by the radioactive decay of massive neutron-rich
nuclides created via r-process nucleosynthesis in the neutron-star ejecta. In
particular, evidence for this scenario is found from broad features seen in
Hubble Space Telescope infrared spectroscopy, similar to those predicted for
lanthanide dominated ejecta, and the much slower evolution in the near-infrared
Ks-band compared to the optical. This indicates that the late-time light is
dominated by high-opacity lanthanide-rich ejecta, suggesting nucleosynthesis to
the 3rd r-process peak (atomic masses A~195). This discovery confirms that
neutron-star mergers produce kilo-/macronovae and that they are at least a
major - if not the dominant - site of rapid neutron capture nucleosynthesis in
the universe
The X-ray counterpart to the gravitational wave event GW 170817
A long-standing paradigm in astrophysics is that collisions- or mergers- of
two neutron stars (NSs) form highly relativistic and collimated outflows (jets)
powering gamma-ray bursts (GRBs) of short (< 2 s) duration. However, the
observational support for this model is only indirect. A hitherto outstanding
prediction is that gravitational wave (GW) events from such mergers should be
associated with GRBs, and that a majority of these GRBs should be off-axis,
that is, they should point away from the Earth. Here we report the discovery of
the X-ray counterpart associated with the GW event GW170817. While the
electromagnetic counterpart at optical and infrared frequencies is dominated by
the radioactive glow from freshly synthesized r-process material in the merger
ejecta, known as kilonova, observations at X-ray and, later, radio frequencies
exhibit the behavior of a short GRB viewed off-axis. Our detection of X-ray
emission at a location coincident with the kilonova transient provides the
missing observational link between short GRBs and GWs from NS mergers, and
gives independent confirmation of the collimated nature of the GRB emission.Comment: 38 pages, 10 figures, Nature, in pres
Multi-messenger observations of a binary neutron star merger
On 2017 August 17 a binary neutron star coalescence candidate (later designated GW170817) with merger time 12:41:04 UTC was observed through gravitational waves by the Advanced LIGO and Advanced Virgo detectors. The Fermi Gamma-ray Burst Monitor independently detected a gamma-ray burst (GRB 170817A) with a time delay of ~1.7 s with respect to the merger time. From the gravitational-wave signal, the source was initially localized to a sky region of 31 deg2 at a luminosity distance of 40+8-8 Mpc and with component masses consistent with neutron stars. The component masses were later measured to be in the range 0.86 to 2.26 Mo. An extensive observing campaign was launched across the electromagnetic spectrum leading to the discovery of a bright optical transient (SSS17a, now with the IAU identification of AT 2017gfo) in NGC 4993 (at ~40 Mpc) less than 11 hours after the merger by the One- Meter, Two Hemisphere (1M2H) team using the 1 m Swope Telescope. The optical transient was independently detected by multiple teams within an hour. Subsequent observations targeted the object and its environment. Early ultraviolet observations revealed a blue transient that faded within 48 hours. Optical and infrared observations showed a redward evolution over ~10 days. Following early non-detections, X-ray and radio emission were discovered at the transient’s position ~9 and ~16 days, respectively, after the merger. Both the X-ray and radio emission likely arise from a physical process that is distinct from the one that generates the UV/optical/near-infrared emission. No ultra-high-energy gamma-rays and no neutrino candidates consistent with the source were found in follow-up searches. These observations support the hypothesis that GW170817 was produced by the merger of two neutron stars in NGC4993 followed by a short gamma-ray burst (GRB 170817A) and a kilonova/macronova powered by the radioactive decay of r-process nuclei synthesized in the ejecta
Swift and NuSTAR observations of GW170817: Detection of a blue kilonova
With the first direct detection of merging black holes in 2015, the era of gravitational wave (GW) astrophysics began. A complete picture of compact object mergers, however, requires the detection of an electromagnetic (EM) counterpart. We report ultraviolet (UV) and x-ray observations by Swift and the Nuclear Spectroscopic Telescope ARray (NuSTAR) of the EM counterpart of the binary neutron star merger GW 170817. The bright, rapidly fading ultraviolet emission indicates a high mass (≈ 0.03 solar masses) wind-driven outflow with moderate electron fraction (Ye ≈ 0.27). Combined with the x-ray limits, we favor an observer viewing angle of ≈30° away from the orbital rotation axis, which avoids both obscuration from the heaviest elements in the orbital plane and a direct view of any ultra-relativistic, highly collimated ejecta (a γ-ray burst afterglow)