A. Allan
University of Exeter
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Science | 2008
B. S. Gaudi; D. P. Bennett; A. Udalski; A. Gould; G. W. Christie; D. Maoz; Subo Dong; J. McCormick; M. K. Szymański; P. J. Tristram; S. Nikolaev; Bohdan Paczynski; M. Kubiak; G. Pietrzyński; I. Soszyński; O. Szewczyk; K. Ulaczyk; Ł. Wyrzykowski; D. L. DePoy; Cheongho Han; Shai Kaspi; C.-U. Lee; F. Mallia; T. Natusch; Richard W. Pogge; B.-G. Park; F. Abe; I. A. Bond; C. S. Botzler; A. Fukui
Searches for extrasolar planets have uncovered an astonishing diversity of planetary systems, yet the frequency of solar system analogs remains unknown. The gravitational microlensing planet search method is potentially sensitive to multiple-planet systems containing analogs of all the solar system planets except Mercury. We report the detection of a multiple-planet system with microlensing. We identify two planets with masses of ∼0.71 and ∼0.27 times the mass of Jupiter and orbital separations of ∼2.3 and ∼4.6 astronomical units orbiting a primary star of mass ∼0.50 solar mass at a distance of ∼1.5 kiloparsecs. This system resembles a scaled version of our solar system in that the mass ratio, separation ratio, and equilibrium temperatures of the planets are similar to those of Jupiter and Saturn. These planets could not have been detected with other techniques; their discovery from only six confirmed microlensing planet detections suggests that solar system analogs may be common.
Nature | 2009
Nial R. Tanvir; Derek B. Fox; Andrew J. Levan; Edo Berger; K. Wiersema; J. P. U. Fynbo; A. Cucchiara; T. Krühler; N. Gehrels; J. S. Bloom; J. Greiner; P. A. Evans; E. Rol; F. E. Olivares; J. Hjorth; P. Jakobsson; J. Farihi; R. Willingale; Rhaana L. C. Starling; S. B. Cenko; Daniel A. Perley; Justyn R. Maund; J. Duke; R. A. M. J. Wijers; Andrew J. Adamson; A. Allan; M. N. Bremer; D. N. Burrows; A. J. Castro-Tirado; B. Cavanagh
Long-duration gamma-ray bursts (GRBs) are thought to result from the explosions of certain massive stars, and some are bright enough that they should be observable out to redshifts of z > 20 using current technology. Hitherto, the highest redshift measured for any object was z = 6.96, for a Lyman-alpha emitting galaxy. Here we report that GRB 090423 lies at a redshift of z approximately 8.2, implying that massive stars were being produced and dying as GRBs approximately 630 Myr after the Big Bang. The burst also pinpoints the location of its host galaxy.It is thought that the first generations of massive stars in the Universe were an important, and quite possibly dominant, source of the ultra-violet radiation that reionized the hydrogen gas in the intergalactic medium (IGM); a state in which it has remained to the present day. Measurements of cosmic microwave background anisotropies suggest that this phase-change largely took place in the redshift range z=10.8 +/- 1.4, while observations of quasars and Lyman-alpha galaxies have shown that the process was essentially completed by z=6. However, the detailed history of reionization, and characteristics of the stars and proto-galaxies that drove it, remain unknown. Further progress in understanding requires direct observations of the sources of ultra-violet radiation in the era of reionization, and mapping the evolution of the neutral hydrogen fraction through time. The detection of galaxies at such redshifts is highly challenging, due to their intrinsic faintness and high luminosity distance, whilst bright quasars appear to be rare beyond z~7. Here we report the discovery of a gamma-ray burst, GRB 090423, at redshift z=8.26 -0.08 +0.07. This is well beyond the redshift of the most distant spectroscopically confirmed galaxy (z=6.96) and quasar (z=6.43). It establishes that massive stars were being produced, and dying as GRBs, ~625 million years after the Big Bang. In addition, the accurate position of the burst pinpoints the location of the most distant galaxy known to date. Larger samples of GRBs beyond z~7 will constrain the evolving rate of star formation in the early universe, while rapid spectroscopy of their afterglows will allow direct exploration of the progress of reionization with cosmic time.Long-duration γ-ray bursts (GRBs) are thought to result from the explosions of certain massive stars, and some are bright enough that they should be observable out to redshifts of z > 20 using current technology. Hitherto, the highest redshift measured for any object was z = 6.96, for a Lyman-α emitting galaxy. Here we report that GRB 090423 lies at a redshift of z ≈ 8.2, implying that massive stars were being produced and dying as GRBs ∼630 Myr after the Big Bang. The burst also pinpoints the location of its host galaxy.
The Astrophysical Journal | 2010
D. P. Bennett; Sun Hong Rhie; Sergei Nikolaev; B. S. Gaudi; A. Udalski; A. Gould; G. W. Christie; D. Maoz; Subo Dong; J. McCormick; M. K. Szymański; P. J. Tristram; Bruce A. Macintosh; K. H. Cook; M. Kubiak; G. Pietrzyński; I. Soszyński; O. Szewczyk; K. Ulaczyk; Ł. Wyrzykowski; D. L. DePoy; Cheongho Han; Shai Kaspi; C.-U. Lee; F. Mallia; T. Natusch; B.-G. Park; Richard W. Pogge; David Polishook; F. Abe
We present a new analysis of the Jupiter+Saturn analog system, OGLE-2006-BLG-109Lb,c, which was the first double planet system discovered with the gravitational microlensing method. This is the only multi-planet system discovered by any method with measured masses for the star and both planets. In addition to the signatures of two planets, this event also exhibits a microlensing parallax signature and finite source effects that provide a direct measure of the masses of the star and planets, and the expected brightness of the host star is confirmed by Keck AO imaging, yielding masses of , Mb = 231 ± 19 M ⊕, and Mc = 86 ± 7 M ⊕. The Saturn-analog planet in this system had a planetary light-curve deviation that lasted for 11 days, and as a result, the effects of the orbital motion are visible in the microlensing light curve. We find that four of the six orbital parameters are tightly constrained and that a fifth parameter, the orbital acceleration, is weakly constrained. No orbital information is available for the Jupiter-analog planet, but its presence helps to constrain the orbital motion of the Saturn-analog planet. Assuming co-planar orbits, we find an orbital eccentricity of and an orbital inclination of . The 95% confidence level lower limit on the inclination of i > 49° implies that this planetary system can be detected and studied via radial velocity measurements using a telescope of 30 m aperture.
The Astrophysical Journal | 2009
A. Gould; A. Udalski; Berto Monard; K. Horne; Subo Dong; N. Miyake; Kailash C. Sahu; D. P. Bennett; Ł. Wyrzykowski; I. Soszyński; M. K. Szymański; M. Kubiak; G. Pietrzyński; O. Szewczyk; K. Ulaczyk; W. Allen; G. W. Christie; D. L. DePoy; B. S. Gaudi; Cheongho Han; C.-U. Lee; J. McCormick; T. Natusch; B.-G. Park; Richard W. Pogge; A. Allan; M. F. Bode; D. M. Bramich; M. J. Burgdorf; M. Dominik
Parallax is the most fundamental technique for measuring distances to astronomical objects. Although terrestrial parallax was pioneered over 2000 years ago by Hipparchus (ca. 140 B.C.E.) to measure the distance to the Moon, the baseline of the Earth is so small that terrestrial parallax can generally only be applied to objects in the Solar System. However, there exists a class of extreme gravitational microlensing events in which the effects of terrestrial parallax can be readily detected and so permit the measurement of the distance, mass, and transverse velocity of the lens. Here we report observations of the first such extreme microlensing event OGLE-2007-BLG-224, from which we infer that the lens is a brown dwarf of mass M = 0.056 ± 0.004 M ☉, with a distance of 525 ± 40 pc and a transverse velocity of 113 ± 21 km s–1. The velocity places the lens in the thick disk, making this the lowest-mass thick-disk brown dwarf detected so far. Follow-up observations may allow one to observe the light from the brown dwarf itself, thus serving as an important constraint for evolutionary models of these objects and potentially opening a new window on substellar objects. The low a priori probability of detecting a thick-disk brown dwarf in this event, when combined with additional evidence from other observations, suggests that old substellar objects may be more common than previously assumed.
Nature | 2009
Nial R. Tanvir; Derek B. Fox; Andrew J. Levan; Edo Berger; K. Wiersema; J. P. U. Fynbo; A. Cucchiara; T. Kruehler; N. Gehrels; J. S. Bloom; J. Greiner; P. A. Evans; E. Rol; F. E. Olivares; J. Hjorth; P. Jakobsson; J. Farihi; R. Willingale; Randall C. Starling; S. B. Cenko; Daniel A. Perley; Justyn R. Maund; J. Duke; R. A. M. J. Wijers; A. J. Adamson; A. Allan; M. N. Bremer; D. N. Burrows; A. J. Castro Tirado; Brad Cavanagh
Long-duration gamma-ray bursts (GRBs) are thought to result from the explosions of certain massive stars, and some are bright enough that they should be observable out to redshifts of z > 20 using current technology. Hitherto, the highest redshift measured for any object was z = 6.96, for a Lyman-alpha emitting galaxy. Here we report that GRB 090423 lies at a redshift of z approximately 8.2, implying that massive stars were being produced and dying as GRBs approximately 630 Myr after the Big Bang. The burst also pinpoints the location of its host galaxy.It is thought that the first generations of massive stars in the Universe were an important, and quite possibly dominant, source of the ultra-violet radiation that reionized the hydrogen gas in the intergalactic medium (IGM); a state in which it has remained to the present day. Measurements of cosmic microwave background anisotropies suggest that this phase-change largely took place in the redshift range z=10.8 +/- 1.4, while observations of quasars and Lyman-alpha galaxies have shown that the process was essentially completed by z=6. However, the detailed history of reionization, and characteristics of the stars and proto-galaxies that drove it, remain unknown. Further progress in understanding requires direct observations of the sources of ultra-violet radiation in the era of reionization, and mapping the evolution of the neutral hydrogen fraction through time. The detection of galaxies at such redshifts is highly challenging, due to their intrinsic faintness and high luminosity distance, whilst bright quasars appear to be rare beyond z~7. Here we report the discovery of a gamma-ray burst, GRB 090423, at redshift z=8.26 -0.08 +0.07. This is well beyond the redshift of the most distant spectroscopically confirmed galaxy (z=6.96) and quasar (z=6.43). It establishes that massive stars were being produced, and dying as GRBs, ~625 million years after the Big Bang. In addition, the accurate position of the burst pinpoints the location of the most distant galaxy known to date. Larger samples of GRBs beyond z~7 will constrain the evolving rate of star formation in the early universe, while rapid spectroscopy of their afterglows will allow direct exploration of the progress of reionization with cosmic time.Long-duration γ-ray bursts (GRBs) are thought to result from the explosions of certain massive stars, and some are bright enough that they should be observable out to redshifts of z > 20 using current technology. Hitherto, the highest redshift measured for any object was z = 6.96, for a Lyman-α emitting galaxy. Here we report that GRB 090423 lies at a redshift of z ≈ 8.2, implying that massive stars were being produced and dying as GRBs ∼630 Myr after the Big Bang. The burst also pinpoints the location of its host galaxy.
The Astrophysical Journal | 2013
H. Park; A. Udalski; C. Han; A. Gould; J. P. Beaulieu; Y. Tsapras; M. K. Szymański; M. Kubiak; I. Soszyński; Grzegorz Pietrzyński; R. Poleski; K. Ulaczyk; P. Pietrukowicz; S. Kozłowski; J. Skowron; Ł. Wyrzykowski; J.-Y. Choi; D. L. DePoy; Subo Dong; B. S. Gaudi; K.-H. Hwang; Y. K. Jung; A. Kavka; C.-U. Lee; L. A. G. Monard; B.-G. Park; Richard W. Pogge; I. Porritt; I.-G. Shin; J. C. Yee
Gravitational microlensing events produced by lenses composed of binary masses are important because they provide a major channel for determining physical parameters of lenses. In this work, we analyze the light curves of two binary-lens events, OGLE-2006-BLG-277 and OGLE-2012-BLG-0031, for which the light curves exhibit strong deviations from standard models. From modeling considering various second-order effects, we find that the deviations are mostly explained by the effect of the lens orbital motion. We also find that lens parallax effects can mimic orbital effects to some extent. This implies that modeling light curves of binary-lens events not considering orbital effects can result in lens parallaxes that are substantially different from actual values and thus wrong determinations of physical lens parameters. This demonstrates the importance of routine consideration of orbital effects in interpreting light curves of binary-lens events. It is found that the lens of OGLE-2006-BLG-277 is a binary composed of a low-mass star and a brown dwarf companion.
The Astrophysical Journal | 2011
I.-G. Shin; A. Udalski; C. Han; A. Gould; M. Dominik; P. Fouqué; M. Kubiak; M. K. Szymański; G. Pietrzynki; I. Soszyński; K. Ulaczyk; L. Wyrzykowski; D. L. DePoy; Subo Dong; B. S. Gaudi; C.-U. Lee; B.-G. Park; Richard W. Pogge; M. D. Albrow; A. Allan; J. P. Beaulieu; D. P. Bennett; M. F. Bode; D. M. Bramich; S. Brillant; M. J. Burgdorf; H. Calitz; A. Cassan; K. H. Cook; E. Corrales
We present the result of the analysis of the gravitational binary-lensing event OGLE-2005-BLG-018. The light curve of the event is characterized by two adjacent strong features and a single weak feature separated from the strong features. The light curve exhibits noticeable deviations from the best-fit model based on standard binary parameters. To explain the deviation, we test models including various higher-order effects of the motions of the observer, source, and lens. From this, we find that it is necessary to account for the orbital motion of the lens in describing the light curve. From modeling the light curve considering the parallax effect and Keplerian orbital motion, we are able to not only measure the physical parameters but also to find a complete orbital solution of the lens system. It is found that the event was produced by a binary lens located in the Galactic bulge with a distance of 6.7 ± 0.3 kpc from the Earth. The individual lens components with masses 0.9 ± 0.3 M_⊙ and 0.5 ± 0.1 M_⊙ are separated with a semi-major axis of a = 2.5 ± 1.0 AU and orbiting each other with a period P = 3.1 ± 1.3 yr. This event demonstrates that it is possible to extract detailed information about binary lens systems from well-resolved lensing light curves.
Monthly Notices of the Royal Astronomical Society | 2005
T. Naylor; A. Allan; Knox S. Long
We present a phase-resolved spectroscopic study of the secondary star in the cataclysmic variable (CV) U Gem. We use our data to measure the radial velocity semi-amplitude, systemic velocity and rotational velocity of the secondary star. Combining this with literature data allows us to determine masses and radii for both the secondary star and white dwarf, which are independent of any assumptions about their structure. We use these to compare their properties to those of field stars and find that both components follow field mass–radius relationships. The secondary star has the mass, radius, luminosity and photometric temperature of an M2 star, but a spectroscopic temperature of M4. The latter may well be due to a high metallicity. There is a troubling inconsistency between the radius of the white dwarf inferred from its gravitational redshift and inclination and that inferred from its temperature, flux and astrometric distance. We find that there are two fundamental limits to the accuracy of the parameters we can derive. First, the radial velocity curve of the secondary star deviates from a sinusoid, in part because of its asphericity (which can be modelled) and in part because the line flux is not evenly distributed over its surface. Secondly, we cannot be certain which spectral type is the best match for the lines of the secondary star, and the derived rotational velocity is a function of the spectral type of the template star used.
Monthly Notices of the Royal Astronomical Society | 1999
Natalie A. Webb; T. Naylor; Zach Ioannou; W. J. Worraker; John Stull; A. Allan; Robert A. Fried; Nicholas D. James; D. Strange
We present a comprehensive photometric dataset taken over the entire outburst of the eclipsing dwarf nova IP Peg in September/October 1997. Analysis of the lightcurves taken over the long rise to the peak-of-outburst shows conclusively that the outburst started near the centre of the disc and moved outwards. This is the first dataset that spatially resolves such an outburst. The dataset is consistent with the idea that long rise times are indicative of such ‘inside-out’ outbursts. We show how the thickness and the radius of the disc, along with the mass transfer rate change over the whole outburst. In addition, we show evidence of the secondary and the irradiation thereof. We discuss the possibility of spiral shocks in the disc; however we find no conclusive evidence of their existence in this dataset.
The Astrophysical Journal | 2014
C. B. Henderson; H. Park; T. Sumi; A. Udalski; Andrew Gould; Y. Tsapras; C. Han; B. S. Gaudi; V. Bozza; F. Abe; D. P. Bennett; I. A. Bond; C. S. Botzler; M. Freeman; A. Fukui; D. Fukunaga; Y. Itow; N. Koshimoto; C. H. Ling; K. Masuda; Y. Matsubara; Y. Muraki; S. Namba; K. Ohnishi; N. J. Rattenbury; To. Saito; D. J. Sullivan; D. Suzuki; W. L. Sweatman; P. J. Tristram
The mass of the lenses giving rise to Galactic microlensing events can be constrained by measuring the relative lenssource proper motion and lens flux. The flux of the lens can be separated from that of the source, companions to the source, and unrelated nearby stars with high-resolution images taken when the lens and source are spatially resolved.