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Publications of the Astronomical Society of the Pacific | 2009

The Palomar Transient Factory: System Overview, Performance, and First Results

Nicholas M. Law; S. R. Kulkarni; Richard G. Dekany; Eran O. Ofek; Robert Michael Quimby; Peter E. Nugent; Jason A. Surace; Carl C. Grillmair; Joshua S. Bloom; Mansi M. Kasliwal; Lars Bildsten; Timothy M. Brown; S. Bradley Cenko; David R. Ciardi; Ernest Croner; S. George Djorgovski; Julian Christopher van Eyken; Alexei V. Filippenko; Derek B. Fox; Avishay Gal-Yam; David Hale; Nouhad Hamam; George Helou; John R. Henning; D. Andrew Howell; J. Jacobsen; Russ R. Laher; Sean Mattingly; Dan McKenna; Andrew J. Pickles

The Palomar Transient Factory (PTF) is a fully-automated, wide-field survey aimed at a systematic exploration of the optical transient sky. The transient survey is performed using a new 8.1 square degree camera installed on the 48 inch Samuel Oschin telescope at Palomar Observatory; colors and light curves for detected transients are obtained with the automated Palomar 60 inch telescope. PTF uses 80% of the 1.2 m and 50% of the 1.5 m telescope time. With an exposure of 60 s the survey reaches a depth of m_(g′) ≈ 21.3 and m_R ≈ 20.6 (5σ, median seeing). Four major experiments are planned for the five-year project: (1) a 5 day cadence supernova search; (2) a rapid transient search with cadences between 90 s and 1 day; (3) a search for eclipsing binaries and transiting planets in Orion; and (4) a 3π sr deep H-alpha survey. PTF provides automatic, real-time transient classification and follow-up, as well as a database including every source detected in each frame. This paper summarizes the PTF project, including several months of on-sky performance tests of the new survey camera, the observing plans, and the data reduction strategy. We conclude by detailing the first 51 PTF optical transient detections, found in commissioning data.


Publications of the Astronomical Society of the Pacific | 2009

Exploring the Optical Transient Sky with the Palomar Transient Factory

S. R. Kulkarni; Nicholas M. Law; Joshua S. Bloom; David R. Ciardi; George Djorgovski; Derek B. Fox; Avishay Gal-Yam; Carl C. Grillmair; Mansi M. Kasliwal; Peter E. Nugent; Eran O. Ofek; Robert Michael Quimby; William T. Reach; Michael M. Shara; Lars Bildsten; S. Bradley Cenko; Andrew J. Drake; Alexei V. Filippenko; D. J. Helfand; George Helou; D. Andrew Howell; Dovi Poznanski; Mark Sullivan

The Palomar Transient Factory (PTF) is a wide-field experiment designed to investigate the optical transient and variable sky on time scales from minutes to years. PTF uses the CFH12k mosaic camera, with a field of view of 7.9 deg^2 and a plate scale of 1″ pixel^(-1), mounted on the Palomar Observatory 48 inch Samuel Oschin Telescope. The PTF operation strategy is devised to probe the existing gaps in the transient phase space and to search for theoretically predicted, but not yet detected, phenomena, such as fallback supernovae, macronovae, .Ia supernovae, and the orphan afterglows of gamma-ray bursts. PTF will also discover many new members of known source classes, from cataclysmic variables in their various avatars to supernovae and active galactic nuclei, and will provide important insights into understanding galactic dynamics (through RR Lyrae stars) and the solar system (asteroids and near-Earth objects). The lessons that can be learned from PTF will be essential for the preparation of future large synoptic sky surveys like the Large Synoptic Survey Telescope. In this article we present the scientific motivation for PTF and describe in detail the goals and expectations for this experiment.


Monthly Notices of the Royal Astronomical Society | 2011

Nearby supernova rates from the Lick Observatory Supernova Search – II. The observed luminosity functions and fractions of supernovae in a complete sample

Weidong Li; Jesse Leaman; Ryan Chornock; Alexei V. Filippenko; Dovi Poznanski; Mohan Ganeshalingam; Xiaofeng Wang; Maryam Modjaz; Saurabh W. Jha; Ryan J. Foley; Nathan Smith

This is the second paper of a series in which we present new measurements of the observed rates of supernovae (SNe) in the local Universe, determined from the Lick Observatory Supernova Search (LOSS). In this paper, a complete SN sample is constructed, and the observed (uncorrected for host-galaxy extinction) luminosity functions (LFs) of SNe are derived. These LFs solve two issues that have plagued previous rate calculations for nearby SNe: the luminosity distribution of SNe and the host-galaxy extinction. We select a volume-limited sample of 175 SNe, collect photometry for every object, and fit a family of light curves to constrain the peak magnitudes and light-curve shapes. The volume-limited LFs show that they are not well represented by a Gaussian distribution. There are notable differences in the LFs for galaxies of different Hubble types (especially for SNe Ia). We derive the observed fractions for the different subclasses in a complete SN sample, and find significant fractions of SNe II-L (10%), IIb (12%), and IIn (9%) in the SN II sample. Furthermore, we derive the LFs and the observed fractions of different SN subclasses in a magnitudelimited survey with different observation intervals, and find that the LFs are enhanced at the high-luminosity end and appear more “standard” with smaller scatter, and that the LFs and fractions of SNe do not change significantly when the observation interval is shorter than 10 d. We also discuss the LFs in different galaxy sizes and inclinations, and for different SN subclasses. Some notable results are that there is not a strong correlation between the SN LFs and the host-galaxy size, but there might be a preference for SNe IIn to occur in small, late-type spiral galaxies. The LFs in different inclination bins do not provide strong evidence for extreme extinction in highly inclined galaxies, though the sample is still small. The LFs of different SN subclasses show significant differences. We also find that SNe Ibc and IIb come from more luminous galaxies than SNe II-P, while SNe IIn come from less luminous galaxies, suggesting a possible metallicity effect. The limitations and applications of our LFs are also discussed.


Nature | 2011

Supernova SN 2011fe from an exploding carbon–oxygen white dwarf star

Peter E. Nugent; Mark Sullivan; S. Bradley Cenko; R. C. Thomas; Daniel Kasen; D. Andrew Howell; D. F. Bersier; Joshua S. Bloom; S. R. Kulkarni; M. T. Kandrashoff; Alexei V. Filippenko; Jeffrey M. Silverman; Geoffrey W. Marcy; Andrew W. Howard; Howard Isaacson; K. Maguire; Nao Suzuki; James E. Tarlton; Yen Chen Pan; Lars Bildsten; Benjamin J. Fulton; Jerod T. Parrent; David J. Sand; Philipp Podsiadlowski; Federica B. Bianco; Benjamin E. P. Dilday; Melissa Lynn Graham; J. D. Lyman; P. A. James; Mansi M. Kasliwal

Type Ia supernovae have been used empirically as ‘standard candles’ to demonstrate the acceleration of the expansion of the Universe even though fundamental details, such as the nature of their progenitor systems and how the stars explode, remain a mystery. There is consensus that a white dwarf star explodes after accreting matter in a binary system, but the secondary body could be anything from a main-sequence star to a red giant, or even another white dwarf. This uncertainty stems from the fact that no recent type Ia supernova has been discovered close enough to Earth to detect the stars before explosion. Here we report early observations of supernova SN 2011fe in the galaxy M101 at a distance from Earth of 6.4 megaparsecs. We find that the exploding star was probably a carbon–oxygen white dwarf, and from the lack of an early shock we conclude that the companion was probably a main-sequence star. Early spectroscopy shows high-velocity oxygen that slows rapidly, on a timescale of hours, and extensive mixing of newly synthesized intermediate-mass elements in the outermost layers of the supernova. A companion paper uses pre-explosion images to rule out luminous red giants and most helium stars as companions to the progenitor.


Nature | 2009

Supernova 2007bi as a pair-instability explosion

Avishay Gal-Yam; Paolo A. Mazzali; Eran O. Ofek; Peter E. Nugent; S. R. Kulkarni; Mansi M. Kasliwal; Robert Michael Quimby; A. V. Filippenko; S. B. Cenko; Ryan Chornock; Roni Waldman; D. Kasen; Edward C. Beshore; Andrew J. Drake; R. C. Thomas; J. S. Bloom; Dovi Poznanski; Adam A. Miller; Ryan J. Foley; Jeffrey M. Silverman; Iair Arcavi; Richard S. Ellis; J. S. Deng

Stars with initial masses such that 10 ≤ Minitial ≤ 100, where is the solar mass, fuse progressively heavier elements in their centres, until the core is inert iron. The core then gravitationally collapses to a neutron star or a black hole, leading to an explosion—an iron-core-collapse supernova. By contrast, extremely massive stars with Minitial ≥ 140 (if such exist) develop oxygen cores with masses, Mcore, that exceed 50, where high temperatures are reached at relatively low densities. Conversion of energetic, pressure-supporting photons into electron–positron pairs occurs before oxygen ignition and leads to a violent contraction which triggers a nuclear explosion that unbinds the star in a pair-instability supernova. Transitional objects with 100 < Minitial < 140 may end up as iron-core-collapse supernovae following violent mass ejections, perhaps as a result of brief episodes of pair instability, and may already have been identified. Here we report observations of supernova SN 2007bi, a luminous, slowly evolving object located within a dwarf galaxy. We estimate the exploding core mass to be Mcore ≈ 100, in which case theory unambiguously predicts a pair-instability supernova. We show that >3 of radioactive 56Ni was synthesized during the explosion and that our observations are well fitted by models of pair-instability supernovae. This indicates that nearby dwarf galaxies probably host extremely massive stars, above the apparent Galactic stellar mass limit, which perhaps result from processes similar to those that created the first stars in the Universe.


Nature | 2011

Hydrogen-poor superluminous stellar explosions

Robert Michael Quimby; S. R. Kulkarni; Mansi M. Kasliwal; Avishay Gal-Yam; I. Arcavi; P. Nugent; R. C. Thomas; D. A. Howell; Ehud Nakar; Lars Bildsten; Christopher A. Theissen; Nicholas M. Law; Richard G. Dekany; Gustavo Rahmer; David Hale; Roger Smith; Eran O. Ofek; J. Zolkower; Viswa Velur; Robert J. Walters; John R. Henning; K. Bui; Daniel L. McKenna; Dovi Poznanski; S. B. Cenko; David Levitan

Supernovae are stellar explosions driven by gravitational or thermonuclear energy that is observed as electromagnetic radiation emitted over weeks or more. In all known supernovae, this radiation comes from internal energy deposited in the outflowing ejecta by one or more of the following processes: radioactive decay of freshly synthesized elements (typically 56Ni), the explosion shock in the envelope of a supergiant star, and interaction between the debris and slowly moving, hydrogen-rich circumstellar material. Here we report observations of a class of luminous supernovae whose properties cannot be explained by any of these processes. The class includes four new supernovae that we have discovered and two previously unexplained events (SN 2005ap and SCP 06F6) that we can now identify as members of the same class. These supernovae are all about ten times brighter than most type Ia supernova, do not show any trace of hydrogen, emit significant ultraviolet flux for extended periods of time and have late-time decay rates that are inconsistent with radioactivity. Our data require that the observed radiation be emitted by hydrogen-free material distributed over a large radius (∼1015 centimetres) and expanding at high speeds (>104 kilometres per second). These long-lived, ultraviolet-luminous events can be observed out to redshifts z > 4.


Science | 2011

An Extremely Luminous Panchromatic Outburst from the Nucleus of a Distant Galaxy

Andrew J. Levan; Nial R. Tanvir; S. B. Cenko; Daniel A. Perley; K. Wiersema; J. S. Bloom; Andrew S. Fruchter; A. de Ugarte Postigo; P. T. O’Brien; N. Butler; A. J. van der Horst; G. Leloudas; Adam N. Morgan; Kuntal Misra; Geoffrey C. Bower; J. Farihi; R. L. Tunnicliffe; Maryam Modjaz; Jeffrey M. Silverman; J. Hjorth; C. C. Thöne; A. Cucchiara; J. M. Castro Cerón; A. J. Castro-Tirado; J. A. Arnold; M. Bremer; Jean P. Brodie; Thomas L. Carroll; Michael C. Cooper; P. A. Curran

A recent bright emission observed by the Swift satellite is due to the sudden accretion of a star onto a massive black hole. Variable x-ray and γ-ray emission is characteristic of the most extreme physical processes in the universe. We present multiwavelength observations of a unique γ-ray–selected transient detected by the Swift satellite, accompanied by bright emission across the electromagnetic spectrum, and whose properties are unlike any previously observed source. We pinpoint the event to the center of a small, star-forming galaxy at redshift z = 0.3534. Its high-energy emission has lasted much longer than any γ-ray burst, whereas its peak luminosity was ∼100 times higher than bright active galactic nuclei. The association of the outburst with the center of its host galaxy suggests that this phenomenon has its origin in a rare mechanism involving the massive black hole in the nucleus of that galaxy.


Nature | 2011

Exclusion of a luminous red giant as a companion star to the progenitor of supernova SN 2011fe

Weidong Li; Joshua S. Bloom; Philipp Podsiadlowski; Adam A. Miller; S. Bradley Cenko; Saurabh W. Jha; Mark Sullivan; D. Andrew Howell; Peter E. Nugent; Nathaniel R. Butler; Eran O. Ofek; Mansi M. Kasliwal; Joseph W. Richards; Alan N. Stockton; Hsin-Yi Shih; Lars Bildsten; Michael M. Shara; Joanne Bibby; Alexei V. Filippenko; Mohan Ganeshalingam; Jeffrey M. Silverman; S. R. Kulkarni; Nicholas M. Law; Dovi Poznanski; Robert Michael Quimby; Curtis McCully; Brandon Patel; K. Maguire; Ken J. Shen

Weidong Li1, Joshua S. Bloom1, Philipp Podsiadlowski2, Adam A. Miller1, S. Bradley Cenko1, Saurabh W. Jha3, Mark Sullivan2, D. Andrew Howell4,5, Peter E. Nugent6,1, Nathaniel R. Butler7, Eran O. Ofek8,9, Mansi M. Kasliwal10, Joseph W. Richards1,11, Alan Stockton12, Hsin-Yi Shih12, Lars Bildsten5,13, Michael M. Shara14, Joanne Bibby14, Alexei V. Filippenko1, Mohan Ganeshalingam1, Jeffrey M. Silverman1, S. R. Kulkarni8, Nicholas M. Law15, Dovi Poznanski16, Robert M. Quimby8, Curtis McCully3, Brandon Patel3, & Kate Maguire2Type Ia supernovae are thought to result from a thermonuclear explosion of an accreting white dwarf in a binary system, but little is known of the precise nature of the companion star and the physical properties of the progenitor system. There are two classes of models: double-degenerate (involving two white dwarfs in a close binary system) and single-degenerate models. In the latter, the primary white dwarf accretes material from a secondary companion until conditions are such that carbon ignites, at a mass of 1.38 times the mass of the Sun. The type Ia supernova SN 2011fe was recently detected in a nearby galaxy. Here we report an analysis of archival images of the location of SN 2011fe. The luminosity of the progenitor system (especially the companion star) is 10–100 times fainter than previous limits on other type Ia supernova progenitor systems, allowing us to rule out luminous red giants and almost all helium stars as the mass-donating companion to the exploding white dwarf.


Science | 2012

Ptf 11kx: A type ia supernova with a symbiotic nova progenitor

Benjamin E. P. Dilday; D. A. Howell; S. B. Cenko; Jeffrey M. Silverman; Peter E. Nugent; Sagi Ben-Ami; Lars Bildsten; M. Bolte; Michael Endl; A. V. Filippenko; Orly Gnat; Assaf Horesh; E. Y. Hsiao; Mansi M. Kasliwal; David Kirkman; K. Maguire; G. W. Marcy; K. Moore; Y.-C. Pan; Jerod T. Parrent; Philipp Podsiadlowski; Robert Michael Quimby; Assaf Sternberg; Nao Suzuki; D. R. Tytler; Dong Xu; J. S. Bloom; Avishay Gal-Yam; I. M. Hook; S. R. Kulkarni

Stellar Explosions Stars that are born with masses greater than eight times that of the Sun end their lives in luminous explosions known as supernovae. Over the past decade, access to improved sky surveys has revealed rare types of supernovae that are much more luminous than any of those that were known before. Gal-Yam (p. 927) reviews these superluminous events and groups them into three classes that share common observational and physical characteristics. Gamma-ray bursts are another type of extreme explosive events related to the death of massive stars, which occur once per day somewhere in the universe and produce short-lived bursts of gamma-ray light. Gehrels and Mészáros (p. 932) review what has been learned about these events since the launch of NASAs Swift (2004) and Fermi (2008) satellites. The current interpretation is that gamma-ray bursts are related to the formation of black holes. Type Ia supernovae are used as cosmological distance indicators. They are thought to be the result of the thermonuclear explosion of white dwarf stars in binary systems, but the nature of the stellar companion to the white dwarf is still debated. Dilday et al. (p. 942) report high-resolution spectroscopy of the supernova PTF 11kx, which was detected on 26 January 2011 by the Palomar Transient Factory survey. The data suggest a red giant star companion whose material got transferred to the white dwarf. Spectroscopic data imply that a stellar explosion arose from a binary consisting of a white dwarf and a red giant star. There is a consensus that type Ia supernovae (SNe Ia) arise from the thermonuclear explosion of white dwarf stars that accrete matter from a binary companion. However, direct observation of SN Ia progenitors is lacking, and the precise nature of the binary companion remains uncertain. A temporal series of high-resolution optical spectra of the SN Ia PTF 11kx reveals a complex circumstellar environment that provides an unprecedentedly detailed view of the progenitor system. Multiple shells of circumstellar material are detected, and the SN ejecta are seen to interact with circumstellar material starting 59 days after the explosion. These features are best described by a symbiotic nova progenitor, similar to RS Ophiuchi.


The Astrophysical Journal | 2009

FROM SHOCK BREAKOUT TO PEAK AND BEYOND: EXTENSIVE PANCHROMATIC OBSERVATIONS OF THE TYPE Ib SUPERNOVA 2008D ASSOCIATED WITH SWIFT X-RAY TRANSIENT 080109

Maryam Modjaz; Weidong Li; N. Butler; Ryan Chornock; Daniel A. Perley; Stephane Blondin; J. S. Bloom; A. V. Filippenko; Robert P. Kirshner; Daniel Kocevski; Dovi Poznanski; Malcolm Stuart Hicken; Ryan J. Foley; Guy S. Stringfellow; Perry L. Berlind; D. Barrado y Navascués; Cullen H. Blake; Herve Bouy; Warren R. Brown; Peter M. Challis; H.-. W. Chen; W. H. de Vries; P. Dufour; Emilio E. Falco; Andrew S. Friedman; Mohan Ganeshalingam; Peter Marcus Garnavich; B. Holden; G. D. Illingworth; Nicholas Lee

We present extensive early photometric (ultraviolet through near-infrared) and spectroscopic (optical and near-infrared) data on supernova (SN) 2008D as well as X-ray data analysis on the associated Swift X-ray transient (XRT) 080109. Our data span a time range of 5 hr before the detection of the X-ray transient to 150days after its detection, and a detailed analysis allowed us to derive constraints on the nature of the SN and its progenitor; throughout we draw comparisons with results presented in the literature and find several key aspects that differ. We show that the X-ray spectrum of XRT 080109 can be fit equally well by an absorbed power law or a superposition of about equal parts of both power law and blackbody. Our data first established that SN 2008D is a spectroscopically normal SN Ib (i.e., showing conspicuous He lines) and showed that SN 2008D had a relatively long rise time of 18days and a modest optical peak luminosity. The early-time light curves of the SN are dominated by a cooling stellar envelope (for Δt0.1-4days, most pronounced in the blue bands) followed by 56Ni decay. We construct a reliable measurement of the bolometric output for this stripped-envelope SN, and, combined with estimates of E K and M ej from the literature, estimate the stellar radius R ⊙ of its probable Wolf-Rayet progenitor. According to the model of Waxman etal. and Chevalier & Fransson, we derive R W07⊙ = 1.2 0.7R ⊙ and R CF08⊙ = 12 7 R ⊙, respectively; the latter being more in line with typical WN stars. Spectra obtained at three and four months after maximum light show double-peaked oxygen lines that we associate with departures from spherical symmetry, as has been suggested for the inner ejecta of a number of SN Ib cores.

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Eran O. Ofek

Weizmann Institute of Science

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Avishay Gal-Yam

Weizmann Institute of Science

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Peter E. Nugent

Lawrence Berkeley National Laboratory

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Mansi M. Kasliwal

California Institute of Technology

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S. R. Kulkarni

California Institute of Technology

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Nicholas M. Law

University of North Carolina at Chapel Hill

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J. S. Bloom

University of California

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Jeffrey M. Silverman

University of Texas at Austin

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S. Bradley Cenko

Goddard Space Flight Center

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