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Dive into the research topics where Daniel L. McKenna is active.

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Featured researches published by Daniel L. McKenna.


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.


The Astrophysical Journal | 2010

Supernova PTF 09uj: A possible shock breakout from a dense circumstellar wind

Eran O. Ofek; Itay Rabinak; James D. Neill; Iair Arcavi; S. B. Cenko; Eli Waxman; S. R. Kulkarni; Avishay Gal-Yam; P. Nugent; Lars Bildsten; J. S. Bloom; A. V. Filippenko; Karl Forster; D. A. Howell; J. Jacobsen; Mansi M. Kasliwal; Nicholas M. Law; Crystal L. Martin; Dovi Poznanski; Robert Michael Quimby; Ken J. Shen; Richard G. Dekany; Gustavo Rahmer; David Hale; Roger Smith; J. Zolkower; Viswa Velur; Robert J. Walters; John R. Henning; K. Bui

Type-IIn supernovae (SNe IIn), which are characterized by strong interaction of their ejecta with the surrounding circumstellar matter (CSM), provide a unique opportunity to study the mass-loss history of massive stars shortly before their explosive death. We present the discovery and follow-up observations of an SN IIn, PTF 09uj, detected by the Palomar Transient Factory (PTF). Serendipitous observations by Galaxy Evolution Explorer (GALEX) at ultraviolet (UV) wavelengths detected the rise of the SN light curve prior to the PTF discovery. The UV light curve of the SN rose fast, with a timescale of a few days, to a UV absolute AB magnitude of about –19.5. Modeling our observations, we suggest that the fast rise of the UV light curve is due to the breakout of the SN shock through the dense CSM (n ≈ 10^(10) cm^(–3)). Furthermore, we find that prior to the explosion the progenitor went through a phase of high mass-loss rate (~0.1 M_⊙ yr^(–1)) that lasted for a few years. The decay rate of this SN was fast relative to that of other SNe IIn.


Proceedings of SPIE | 2010

The Palomar Transient Factory Survey Camera: first year performance and results

Nicholas M. Law; Richard G. Dekany; Gustavo Rahmer; David Hale; Roger Smith; Robert Michael Quimby; Eran O. Ofek; Mansi M. Kasliwal; J. Zolkower; Viswa Velur; John R. Henning; K. Bui; Daniel L. McKenna; Peter E. Nugent; J. Jacobsen; Robert J. Walters; J. S. Bloom; Jason A. Surace; Carl J. Grillmair; Russ R. Laher; Sean Mattingly; S. R. Kulkarni

The Palomar Transient Factory (PTF) is a new fully-automated, wide-field survey conducting a systematic exploration of the optical transient sky. The transient survey is performed using a new 8.1 square degree, 101 megapixel camera installed on the 48-inch Samuel Oschin Telescope at Palomar Observatory. The PTF Camera achieved first light at the end of 2008, completed commissioning in July 2009, and is now in routine science operations. The camera is based on the CFH12K camera, and was extensively modified for use on the 48-inch telescope. A field-flattening curved window was installed, the cooling system was re-engineered and upgraded to closed-cycle, custom shutter and filter exchanger mechanisms were added, new custom control software was written, and many other modifications were made. We here describe the performance of these new systems during the first year of Palomar Transient Factory operations, including a detailed and long term on-sky performance characterization. We also describe lessons learned during the construction and commissioning of the upgraded camera, the photometric and astrometric precision currently achieved with the PTF camera, and briefly summarize the first supernova results from the PTF survey.


The Astrophysical Journal | 2010

A CLOSE COMPANION SEARCH AROUND L DWARFS USING APERTURE MASKING INTERFEROMETRY AND PALOMAR LASER GUIDE STAR ADAPTIVE OPTICS

David Bernat; Antonin H. Bouchez; Michael J. Ireland; Peter G. Tuthill; Frantz Martinache; John Angione; Rick Burruss; John Cromer; Richard G. Dekany; Stephen R. Guiwits; John R. Henning; Jeff Hickey; Edward J. Kibblewhite; Daniel L. McKenna; Anna M. Moore; Harold L. Petrie; Jennifer E. Roberts; J. Chris Shelton; Robert P. Thicksten; Thang Trinh; Renu Tripathi; Mitchell Troy; Tuan Truong; Viswa Velur; James P. Lloyd

We present a close companion search around 16 known early L dwarfs using aperture masking interferometry with Palomar laser guide star adaptive optics (LGS AO). The use of aperture masking allows the detection of close binaries, corresponding to projected physical separations of 0.6-10.0 AU for the targets of our survey. This survey achieved median contrast limits of ΔK ~ 2.3 for separations between 1.2λ/D-4λ/D and ΔK ~ 1.4 at 2/3λ/D. We present four candidate binaries detected with moderate-to-high confidence (90%-98%). Two have projected physical separations less than 1.5 AU. This may indicate that tight-separation binaries contribute more significantly to the binary fraction than currently assumed, consistent with spectroscopic and photometric overluminosity studies. Ten targets of this survey have previously been observed with the Hubble Space Telescope as part of companion searches. We use the increased resolution of aperture masking to search for close or dim companions that would be obscured by full aperture imaging, finding two candidate binaries. This survey is the first application of aperture masking with LGS AO at Palomar. Several new techniques for the analysis of aperture masking data in the low signal-to-noise regime are explored.


Proceedings of SPIE | 2008

The PALM-3000 high-order adaptive optics system for Palomar Observatory

Antonin H. Bouchez; Richard G. Dekany; John Angione; Christoph Baranec; Matthew Britton; Khanh Bui; Rick Burruss; John Cromer; Stephen R. Guiwits; John R. Henning; Jeff Hickey; Daniel L. McKenna; Anna M. Moore; Jennifer E. Roberts; Thang Trinh; Mitchell Troy; Tuan N. Truong; Viswa Velur

Deployed as a multi-user shared facility on the 5.1 meter Hale Telescope at Palomar Observatory, the PALM-3000 highorder upgrade to the successful Palomar Adaptive Optics System will deliver extreme AO correction in the near-infrared, and diffraction-limited images down to visible wavelengths, using both natural and sodium laser guide stars. Wavefront control will be provided by two deformable mirrors, a 3368 active actuator woofer and 349 active actuator tweeter, controlled at up to 3 kHz using an innovative wavefront processor based on a cluster of 17 graphics processing units. A Shack-Hartmann wavefront sensor with selectable pupil sampling will provide high-order wavefront sensing, while an infrared tip/tilt sensor and visible truth wavefront sensor will provide low-order LGS control. Four back-end instruments are planned at first light: the PHARO near-infrared camera/spectrograph, the SWIFT visible light integral field spectrograph, Project 1640, a near-infrared coronagraphic integral field spectrograph, and 888Cam, a high-resolution visible light imager.


Proceedings of SPIE | 2008

Facilitizing the Palomar AO laser guide star system

Jennifer E. Roberts; Antonin H. Bouchez; John Angione; Rick Burruss; John Cromer; Richard G. Dekany; Stephen R. Guiwits; John R. Henning; Jeff Hickey; Edward J. Kibblewhite; Daniel L. McKenna; Anna M. Moore; Harold L. Petrie; J. Chris Shelton; Robert P. Thicksten; Thang Trinh; Renu Tripathi; Mitchell Troy; Tuan Truong; Viswa Velur

We describe the work that has gone into taking the sodium Laser Guide Star (LGS) program on the Palomar AO system from a successful experiment to a facility instrument. In particular, we describe the operation of the system, the BTO (beam transfer optics) system which controls the path of the laser in the dome, the aircraft safety systems and the optical systems which allow us to take advantage of the unique properties of the macro/micro pulse laser. In addition we present on sky performance results that demonstrate K-band Strehl ratios of up to 48%


Archive | 2011

Ligth curves of 4 supernovae (Quimby+, 2011)

Robert Michael Quimby; Shrinivas R. Kulkarni; Mansi M. Kasliwal; Avishay Gal-Yam; I. Arcavi; Mark Sullivan; Peter Edward Nugent; Richard C. Thomas; Dale Andrew 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; Richard Walters; John R. Henning; K. Bui; Daniel L. McKenna; Dovi Poznanski; S. Bradley Cenko; Don R. Levitan


Archive | 2010

PTF discovery of PTF10hny, a type II supernova

Avishay Gal-Yam; Sagi Ben-Ami; Iair Arcavi; Robert Michael Quimby; Mansi M. Kasliwal; Eran O. Ofek; S. R. Kulkarni; Peter E. Nugent; J. S. Bloom; Nicholas M. Law; Richard G. Dekany; Gustavo Rahmer; David Hale; Roger Smith; J. Zolkower; Viswa Velur; Richard Walters; John R. Henning; K. Bui; Daniel L. McKenna; J. Jacobsen


Archive | 2010

PTF discovery of PTF10hcw, a type Ib supernova

Avishay Gal-Yam; Iair Arcavi; Sagi Ben Ami; Dong-Ling Xu; Mansi M. Kasliwal; Robert Michael Quimby; Eran O. Ofek; S. R. Kulkarni; Peter E. Nugent; Nicholas M. Law; Richard G. Dekany; Gustavo Rahmer; David Hale; Roger Smith; J. Zolkower; Viswa Velur; Richard Walters; John R. Henning; K. Bui; Daniel L. McKenna; J. Jacobsen


Archive | 2010

PTF discovery of PTF10hif, a type IIn supernova

Avishay Gal-Yam; Iair Arcavi; Sagi Ben Ami; Amiel Sternberg; Dong-Ling Xu; Peter E. Nugent; J. S. Bloom; Dovi Poznanski; Robert Michael Quimby; Eran O. Ofek; Mansi M. Kasliwal; S. R. Kulkarni; Nicholas M. Law; Richard G. Dekany; Gustavo Rahmer; David Hale; Roger Smith; J. Zolkower; Viswa Velur; Richard Walters; John R. Henning; K. Bui; Daniel L. McKenna; J. Jacobsen

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John R. Henning

California Institute of Technology

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Richard G. Dekany

California Institute of Technology

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Viswa Velur

California Institute of Technology

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David Hale

California Institute of Technology

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Gustavo Rahmer

California Institute of Technology

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J. Zolkower

California Institute of Technology

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K. Bui

California Institute of Technology

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Nicholas M. Law

University of North Carolina at Chapel Hill

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Eran O. Ofek

Weizmann Institute of Science

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