Mohan Ganeshalingam
Lawrence Berkeley National Laboratory
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Mohan Ganeshalingam.
Monthly Notices of the Royal Astronomical Society | 2011
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.
The Astrophysical Journal | 2009
Misty C. Bentz; Jonelle L. Walsh; Aaron J. Barth; Nairn Reese Baliber; Vardha N. Bennert; Gabriela Canalizo; Alexei V. Filippenko; Mohan Ganeshalingam; Elinor L. Gates; Jenny E. Greene; Marton G. Hidas; Kyle D. Hiner; Nicholas Lee; Weidong Li; Matthew A. Malkan; Takeo Minezaki; Yu Sakata; Frank J. D. Serduke; Jeffrey M. Silverman; Thea N. Steele; Daniel Stern; R. A. Street; Carol E. Thornton; Tommaso Treu; Xiaofeng Wang; Jong-Hak Woo; Yuzuru Yoshii
We have recently completed a 64-night spectroscopic monitoring campaign at the Lick Observatory 3-m Shane telescope with the aim of measuring the masses of the black holes in 12 nearby (z < 0: 05) Seyfert 1 galaxies with expected masses in the range � 10 6 -10 7 Mand also the well-studied nearby active galactic nucleus (AGN) NGC 5548. Nine of the objects in the sample (including NGC 5548) showed optical variability of sufficient strength during the monitoring campaign to all ow for a time lag to be measured between the continuum fluctuations and the response to these fluctuation s in the broad Hemission. We present here the light curves for all the objects in this sample and the subseq uent Htime lags for the nine objects where these measurements were possible. The Hlag time is directly related to the size of the broad-line reg ion in AGNs, and by combining the Hlag time with the measured width of the Hemission line in the variable part of the spectrum, we determine the virial mass of the central sup ermassive black hole in these nine AGNs. The absolute calibration of the black hole masses is based on the normalization derived by Onken et al., which brings the masses determined by reverberation mapping into agreement with the local MBH -�? relationship for quiescent galaxies. We also examine the time lag response as a function of velocity across the Hline profile for six of the AGNs. The analysis of four leads to rather ambiguous results with relatively flat time lags as a function of velocity. However, SBS 1116+583A exhibits a symmetric time lag response around the line center reminiscent of simple models for circularly orbiting broad -line region (BLR) clouds, and Arp 151 shows an asymmetric profile that is most easily explained by a simple g ravitational infall model. Further investigation will be necessary to fully understand the constraints place d on physical models of the BLR by the velocity- resolved response in these objects. Subject headings:galaxies: active - galaxies: nuclei - galaxies: Seyfert
Nature | 2011
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.
The Astrophysical Journal | 2009
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.
Nature | 2010
Hagai B. Perets; Avishay Gal-Yam; Paolo A. Mazzali; D Arnett; D Kagan; A. V. Filippenko; Wen Li; Iair Arcavi; S. B. Cenko; Derek B. Fox; Douglas C. Leonard; Dae-Sik Moon; David J. Sand; Alicia M. Soderberg; J. P. Anderson; P. A. James; Ryan J. Foley; Mohan Ganeshalingam; Eran O. Ofek; Lars Bildsten; Gijs Nelemans; K. J Shen; Nevin N. Weinberg; Brian D. Metzger; A.L. Piro; Eliot Quataert; M Kiewe; Dovi Poznanski
Supernovae are thought to arise from two different physical processes. The cores of massive, short-lived stars undergo gravitational core collapse and typically eject a few solar masses during their explosion. These are thought to appear as type Ib/c and type II supernovae, and are associated with young stellar populations. In contrast, the thermonuclear detonation of a carbon-oxygen white dwarf, whose mass approaches the Chandrasekhar limit, is thought to produce type Ia supernovae. Such supernovae are observed in both young and old stellar environments. Here we report a faint type Ib supernova, SN 2005E, in the halo of the nearby isolated galaxy, NGC 1032. The ‘old’ environment near the supernova location, and the very low derived ejected mass (∼0.3 solar masses), argue strongly against a core-collapse origin. Spectroscopic observations and analysis reveal high ejecta velocities, dominated by helium-burning products, probably excluding this as a subluminous or a regular type Ia supernova. We conclude that it arises from a low-mass, old progenitor, likely to have been a helium-accreting white dwarf in a binary. The ejecta contain more calcium than observed in other types of supernovae and probably large amounts of radioactive 44Ti.
The Astrophysical Journal | 2008
Nathan Smith; Ryan Chornock; Weidong Li; Mohan Ganeshalingam; Jeffrey M. Silverman; Ryan J. Foley; Alexei V. Filippenko; Aaron J. Barth
SN 2006tf is the third most luminous supernova (SN) discovered so far, after SN 2005ap and SN 2006gy. SN 2006tf is valuable because it provides a link between two regimes: (1) luminous Type IIn supernovae powered by emission directly from interaction with circumstellar material (CSM), and (2) the most extremely luminous SNe where the CSM interaction is so optically thick that energy must diffuse out from an opaque shocked shell. As SN 2006tf evolves, it slowly transitions from the second to the first regime as the clumpy shell becomes more porous. This link suggests that the range in properties of the most luminous SNe is largely determined by the density and speed of hydrogen-rich material ejected shortly before they explode. The total energy radiated by SN 2006tf was at least -->7 ? 1050 ergs. If the bulk of this luminosity came from the thermalization of shock kinetic energy, then the star needs to have ejected ~18 -->M? in the 4-8 yr before core collapse, and another 2-6 -->M? in the decades before that. A Type Ia explosion is therefore excluded. From the H? emission-line profile, we derive a blast wave speed of 2000 km s?1 that does not decelerate, and from the narrow P Cygni absorption from preshock gas we deduce that the progenitors wind speed was ~190 km s?1. This is reminiscent of the wind speeds of luminous blue variables (LBVs), but not of red supergiants or Wolf-Rayet stars. We propose that like SN 2006gy, SN 2006tf marked the death of a very massive star that retained a hydrogen envelope until the end of its life and suffered extreme LBV-like mass loss in the decades before it exploded.
The Astrophysical Journal | 2013
Ryan J. Foley; Peter J. Challis; Ryan Chornock; Mohan Ganeshalingam; Weidong Li; G. H. Marion; Nidia I. Morrell; G. Pignata; M. D. Stritzinger; Jeffrey M. Silverman; Xuewu Wang; J. P. Anderson; Alexei V. Filippenko; Wendy L. Freedman; Mario Hamuy; Saurabh W. Jha; Robert P. Kirshner; Curtis McCully; S. E. Persson; Mark M. Phillips; Daniel E. Reichart; Alicia M. Soderberg
We describe observed properties of the Type Iax class of supernovae (SNe Iax), consisting of SNe observationally similar to its prototypical member, SN 2002cx. The class currently has 25 members, and we present optical photometry and/or optical spectroscopy for most of them. SNe Iax are spectroscopically similar to SNe Ia, but have lower maximum-light velocities (2000 . |v| . 8000 kms −1 ), typically lower peak magnitudes ( 14.2 � MV,peak & 18.9 mag), and most have hot photospheres. Relative to SNe Ia, SNe Iax have low luminosities for their light-curve shape. There is a correlation between luminosity and light-curve shape, similar to that of SNe Ia, but offset from that of SNe Ia and with larger scatter. Despite a host-galaxy morphology distribution that is highly skewed to late-type galaxies without any SNe Iax discovered in elliptical galaxies, there are several indications that the progenitor stars are white dwarfs (WDs): evidence of C/O burning in their maximum-light spectra, low (typically �0.5 M⊙) ejecta masses, strong Fe lines in their late-time spectra, a lack of X-ray detections, and deep limits on massive stars and star formation at the SN sites. However, two SNe Iax show strong He lines in their spectra. The progenitor system and explosion model that best fits all of the data is a binary system of a C/O WD that accretes matter from a He star and has a deflagration. At least some of the time, this explosion will not disrupt the WD. The small number of SNe in this class prohibit a detailed analysis of the homogeneity and heterogeneity of the entire class. We estimate that in a given volume there are 31 +1713 SNe Iax for every 100 SNe Ia, and for every 1 M⊙ of iron generated by SNe Ia at z = 0, SNe Iax generate �0.036 M⊙. Being the largest class of peculiar SNe, thousands of SNe Iax will be discovered by LSST. Future detailed observations of SNe Iax should further our understanding of both their progenitor systems and explosions as well as those of SNe Ia. Subject headings: supernovae: general — supernovae: individual (SN 1991bj, SN 1999ax, SN 2002bp, SN 2002cx, SN 2003gq, SN 2004cs, SN 2004gw, SN 2005P, SN 2005cc, SN 2005hk, SN 2006hn, SN 2007J, SN 2007ie, SN 2007qd, SN 2008A, SN 2008ae, SN 2008ge, SN 2008ha, SN 2009J, SN 2009ku, SN 2010ae, SN 2010el, SN 2011ay, SN 2011ce, SN 2012Z)
The Astrophysical Journal | 2009
Xiaofeng Wang; A. V. Filippenko; Mohan Ganeshalingam; Weidong Li; Jeffrey M. Silverman; L. Wang; Ryan Chornock; Ryan J. Foley; E. L. Gates; B. Macomber; Frank J. D. Serduke; Thea N. Steele; Diane S. Wong
We study the observables of 158 relatively normal Type Ia supernovae (SNe Ia) by dividing them into two groups in terms of the expansion velocity inferred from the absorption minimum of the Si II ?6355 line in their spectra near B-band maximum brightness. One group (Normal) consists of normal SNe Ia populating a narrow strip in the Si II velocity distribution, with an average expansion velocity v = 10, 600 ? 400 km?s?1 near B maximum; the other group (HV) consists of objects with higher velocities, v 11, 800 km s?1. Compared with the Normal group, the HV one shows a narrower distribution in both the peak luminosity and the luminosity decline rate ?m 15. In particular, their B?V colors at maximum brightness are found to be on average redder by ~ 0.1 mag, suggesting that they either are associated with dusty environments or have intrinsically red B?V colors. The HV SNe Ia are also found to prefer a lower extinction ratio RV 1.6 (versus ~ 2.4 for the Normal ones). Applying such an absorption-correction dichotomy to SNe Ia of these two groups remarkably reduces the dispersion in their peak luminosity from 0.178 mag to only 0.125 mag.
Publications of the Astronomical Society of the Pacific | 2007
Mark M. Phillips; Weidong Li; Joshua A. Frieman; Sergei I. Blinnikov; D. L. DePoy; Jose Luis Palacio Prieto; Peter A. Milne; Carlos Contreras; Gaston Folatelli; Nidia I. Morrell; Mario Hamuy; Nicholas B. Suntzeff; M. Roth; Sergio Gonzalez; Wojtek Krzeminski; Alexei V. Filippenko; Wendy L. Freedman; Ryan Chornock; Saurabh W. Jha; Barry F. Madore; S. E. Persson; Christopher R. Burns; P. Wyatt; David C. Murphy; Ryan J. Foley; Mohan Ganeshalingam; F. J. D. Serduke; Kevin Krisciunas; Bruce A. Bassett; Andrew Cameron Becker
ABSTRACT We present extensive \documentclass{aastex} \usepackage{amsbsy} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{bm} \usepackage{mathrsfs} \usepackage{pifont} \usepackage{stmaryrd} \usepackage{textcomp} \usepackage{portland,xspace} \usepackage{amsmath,amsxtra} \usepackage[OT2,OT1]{fontenc} \newcommand\cyr{ \renewcommand\rmdefault{wncyr} \renewcommand\sfdefault{wncyss} \renewcommand\encodingdefault{OT2} \normalfont \selectfont} \DeclareTextFontCommand{\textcyr}{\cyr} \pagestyle{empty} \DeclareMathSizes{10}{9}{7}{6} \begin{document} \landscape
The Astrophysical Journal | 2009
Joshua D. Simon; Avishay Gal-Yam; Orly Gnat; Robert Michael Quimby; Mohan Ganeshalingam; Jeffrey M. Silverman; Stephane Blondin; Weidong Li; Alexei V. Filippenko; J. Craig Wheeler; Robert P. Kirshner; Ferdinando Patat; Peter E. Nugent; Ryan J. Foley; Steven S. Vogt; R. Paul Butler; Kathryn M. G. Peek; Erik Rosolowsky; Gregory J. Herczeg; Daniel Sauer; Paolo A. Mazzali
u^{\prime }g^{\prime }r^{\prime }i^{\prime }BVRIYJHK_{s}