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Astrophysical Journal Supplement Series | 2013

Planetary Candidates Observed by Kepler III: Analysis of the First 16 Months of Data

Natalie M. Batalha; Jason F. Rowe; Stephen T. Bryson; Christopher J. Burke; Douglas A. Caldwell; Jessie L. Christiansen; Fergal Mullally; Susan E. Thompson; Timothy M. Brown; Andrea K. Dupree; Daniel C. Fabrycky; Eric B. Ford; Jonathan J. Fortney; Ronald L. Gilliland; Howard Isaacson; David W. Latham; Geoffrey W. Marcy; Samuel N. Quinn; Darin Ragozzine; Avi Shporer; William J. Borucki; David R. Ciardi; Thomas N. Gautier; Michael R. Haas; Jon M. Jenkins; David G. Koch; Jack J. Lissauer; William Rapin; Gibor Basri; Alan P. Boss

New transiting planet candidates are identified in 16 months (2009 May-2010 September) of data from the Kepler spacecraft. Nearly 5000 periodic transit-like signals are vetted against astrophysical and instrumental false positives yielding 1108 viable new planet candidates, bringing the total count up to over 2300. Improved vetting metrics are employed, contributing to higher catalog reliability. Most notable is the noise-weighted robust averaging of multi-quarter photo-center offsets derived from difference image analysis that identifies likely background eclipsing binaries. Twenty-two months of photometry are used for the purpose of characterizing each of the candidates. Ephemerides (transit epoch, T_0, and orbital period, P) are tabulated as well as the products of light curve modeling: reduced radius (R_P/R_★), reduced semimajor axis (d/R_★), and impact parameter (b). The largest fractional increases are seen for the smallest planet candidates (201% for candidates smaller than 2 R_⊕ compared to 53% for candidates larger than 2 R_⊕) and those at longer orbital periods (124% for candidates outside of 50 day orbits versus 86% for candidates inside of 50 day orbits). The gains are larger than expected from increasing the observing window from 13 months (Quarters 1-5) to 16 months (Quarters 1-6) even in regions of parameter space where one would have expected the previous catalogs to be complete. Analyses of planet frequencies based on previous catalogs will be affected by such incompleteness. The fraction of all planet candidate host stars with multiple candidates has grown from 17% to 20%, and the paucity of short-period giant planets in multiple systems is still evident. The progression toward smaller planets at longer orbital periods with each new catalog release suggests that Earth-size planets in the habitable zone are forthcoming if, indeed, such planets are abundant.


Nature | 2011

A closely packed system of low-mass, low-density planets transiting Kepler-11

Jack J. Lissauer; Daniel C. Fabrycky; Eric B. Ford; William J. Borucki; Francois Fressin; Geoffrey W. Marcy; Jerome A. Orosz; Jason F. Rowe; Guillermo Torres; William F. Welsh; Natalie M. Batalha; Stephen T. Bryson; Lars A. Buchhave; Douglas A. Caldwell; Joshua A. Carter; David Charbonneau; Jessie L. Christiansen; William D. Cochran; Jean-Michel Desert; Edward W. Dunham; Michael N. Fanelli; Jonathan J. Fortney; Thomas N. Gautier; John C. Geary; Ronald L. Gilliland; Michael R. Haas; Jennifer R. Hall; Matthew J. Holman; David G. Koch; David W. Latham

When an extrasolar planet passes in front of (transits) its star, its radius can be measured from the decrease in starlight and its orbital period from the time between transits. Multiple planets transiting the same star reveal much more: period ratios determine stability and dynamics, mutual gravitational interactions reflect planet masses and orbital shapes, and the fraction of transiting planets observed as multiples has implications for the planarity of planetary systems. But few stars have more than one known transiting planet, and none has more than three. Here we report Kepler spacecraft observations of a single Sun-like star, which we call Kepler-11, that reveal six transiting planets, five with orbital periods between 10 and 47 days and a sixth planet with a longer period. The five inner planets are among the smallest for which mass and size have both been measured, and these measurements imply substantial envelopes of light gases. The degree of coplanarity and proximity of the planetary orbits imply energy dissipation near the end of planet formation.


Science | 2011

Kepler-16: a transiting circumbinary planet.

Laurance R. Doyle; Joshua A. Carter; Daniel C. Fabrycky; Robert W. Slawson; Steve B. Howell; Joshua N. Winn; Jerome A. Orosz; Andrej Prˇsa; William F. Welsh; Samuel N. Quinn; David W. Latham; Guillermo Torres; Lars A. Buchhave; Geoffrey W. Marcy; Jonathan J. Fortney; Avi Shporer; Eric B. Ford; Jack J. Lissauer; Darin Ragozzine; Michael Rucker; Natalie M. Batalha; Jon M. Jenkins; William J. Borucki; David G. Koch; Christopher K. Middour; Jennifer R. Hall; Sean McCauliff; Michael N. Fanelli; Elisa V. Quintana; Matthew J. Holman

An exoplanet has been observed, comparable in size and mass to Saturn, that orbits a pair of stars. We report the detection of a planet whose orbit surrounds a pair of low-mass stars. Data from the Kepler spacecraft reveal transits of the planet across both stars, in addition to the mutual eclipses of the stars, giving precise constraints on the absolute dimensions of all three bodies. The planet is comparable to Saturn in mass and size and is on a nearly circular 229-day orbit around its two parent stars. The eclipsing stars are 20 and 69% as massive as the Sun and have an eccentric 41-day orbit. The motions of all three bodies are confined to within 0.5° of a single plane, suggesting that the planet formed within a circumbinary disk.


Nature | 1988

A highly conserved amino-acid sequence in thrombospondin, properdin and in proteins from sporozoites and blood stages of a human malaria parasite

Kathryn J. H. Robson; Jennifer R. Hall; M.W. Jennings; T. J. R. Harris; Kevin Marsh; Chris Newbold; Valerie E. Tate; D. J. Weatherall

As a consequence of gene cloning and DNA sequencing several gene families are emerging in the field of cell–cell recognition. These include immunoglobulins, integrins, certain extracellular glycoproteins1 and a family of functionally unrelated proteins which include factor B2. We report here the cloning and sequencing of a gene from Plasmodium falciparum, coding for a protein we call thrombospondin related anonymous protein (TRAP), which shares certain sequence motifs common to other well-characterized proteins. The most significant homology is based around the sequence Trp-Ser-Pro-Cys-Ser-Val-Thr-Cys-Gly (WSPCSVTCG), present in three copies in region I of thrombospondin (TSP)3, six copies in properdin4 (P) and one copy in all the circumsporozoite (CS) proteins5–10 sequenced so far. TRAP also shares with certain extracellular glycoproteins, including TSP, the cell-recognition signal Arg-Gly-Asp (RGD)11, which has been shown to be crucial in the interaction of several extracellular glycoproteins with members of the integrin superfamily. Unlike the CS protein, TRAP is expressed during the erythrocytic stage of the parasite life cycle.


The Astrophysical Journal | 2010

OVERVIEW OF THE KEPLER SCIENCE PROCESSING PIPELINE

Jon M. Jenkins; Douglas A. Caldwell; Hema Chandrasekaran; Joseph D. Twicken; Stephen T. Bryson; Elisa V. Quintana; Bruce D. Clarke; Jie Li; Christopher Allen; Peter Tenenbaum; Hayley Wu; Todd C. Klaus; Christopher K. Middour; Miles T. Cote; Sean McCauliff; Forrest R. Girouard; Jay P. Gunter; Bill Wohler; Jeneen Sommers; Jennifer R. Hall; Akm Kamal Uddin; Michael S. Wu; Paresh Bhavsar; Jeffrey Edward van Cleve; David L. Pletcher; Jessie A. Dotson; Michael R. Haas; Ronald L. Gilliland; David G. Koch; William J. Borucki

The Kepler Mission Science Operations Center (SOC) performs several critical functions including managing the ~156,000 target stars, associated target tables, science data compression tables and parameters, as well as processing the raw photometric data downlinked from the spacecraft each month. The raw data are first calibrated at the pixel level to correct for bias, smear induced by a shutterless readout, and other detector and electronic effects. A background sky flux is estimated from ~4500 pixels on each of the 84 CCD readout channels, and simple aperture photometry is performed on an optimal aperture for each star. Ancillary engineering data and diagnostic information extracted from the science data are used to remove systematic errors in the flux time series that are correlated with these data prior to searching for signatures of transiting planets with a wavelet-based, adaptive matched filter. Stars with signatures exceeding 7.1? are subjected to a suite of statistical tests including an examination of each stars centroid motion to reject false positives caused by background eclipsing binaries. Physical parameters for each planetary candidate are fitted to the transit signature, and signatures of additional transiting planets are sought in the residual light curve. The pipeline is operational, finding planetary signatures and providing robust eliminations of false positives.


Nature | 2012

Transiting circumbinary planets Kepler-34 b and Kepler-35 b

William F. Welsh; Jerome A. Orosz; Joshua A. Carter; Daniel C. Fabrycky; Eric B. Ford; Jack J. Lissauer; Andrej Prsa; Samuel N. Quinn; Darin Ragozzine; Donald R. Short; Guillermo Torres; Joshua N. Winn; Laurance R. Doyle; Natalie M. Batalha; S. Bloemen; Erik Brugamyer; Lars A. Buchhave; Caroline Caldwell; Douglas A. Caldwell; Jessie L. Christiansen; David R. Ciardi; William D. Cochran; Michael Endl; Jonathan J. Fortney; Thomas N. Gautier; Ronald L. Gilliland; Michael R. Haas; Jennifer R. Hall; Matthew J. Holman; Andrew W. Howard

Most Sun-like stars in the Galaxy reside in gravitationally bound pairs of stars (binaries). Although long anticipated, the existence of a ‘circumbinary planet’ orbiting such a pair of normal stars was not definitively established until the discovery of the planet transiting (that is, passing in front of) Kepler-16. Questions remained, however, about the prevalence of circumbinary planets and their range of orbital and physical properties. Here we report two additional transiting circumbinary planets: Kepler-34 (AB)b and Kepler-35 (AB)b, referred to here as Kepler-34 b and Kepler-35 b, respectively. Each is a low-density gas-giant planet on an orbit closely aligned with that of its parent stars. Kepler-34 b orbits two Sun-like stars every 289 days, whereas Kepler-35 b orbits a pair of smaller stars (89% and 81% of the Sun’s mass) every 131 days. The planets experience large multi-periodic variations in incident stellar radiation arising from the orbital motion of the stars. The observed rate of circumbinary planets in our sample implies that more than ∼1% of close binary stars have giant planets in nearly coplanar orbits, yielding a Galactic population of at least several million.


Nature | 2012

Fast core rotation in red-giant stars as revealed by gravity-dominated mixed modes

P. G. Beck; Josefina Montalban; T. Kallinger; Joris De Ridder; Conny Aerts; R. A. García; S. Hekker; Marc-Antoine Dupret; Benoit Mosser; P. Eggenberger; D. Stello; Y. Elsworth; S. Frandsen; Fabien Carrier; M. Hillen; M. Gruberbauer; Joergen Christensen-Dalsgaard; A. Miglio; M. Valentini; Timothy R. Bedding; Hans Kjeldsen; Forrest R. Girouard; Jennifer R. Hall; Khadeejah A. Ibrahim

When the core hydrogen is exhausted during stellar evolution, the central region of a star contracts and the outer envelope expands and cools, giving rise to a red giant. Convection takes place over much of the star’s radius. Conservation of angular momentum requires that the cores of these stars rotate faster than their envelopes; indirect evidence supports this. Information about the angular-momentum distribution is inaccessible to direct observations, but it can be extracted from the effect of rotation on oscillation modes that probe the stellar interior. Here we report an increasing rotation rate from the surface of the star to the stellar core in the interiors of red giants, obtained using the rotational frequency splitting of recently detected ‘mixed modes’. By comparison with theoretical stellar models, we conclude that the core must rotate at least ten times faster than the surface. This observational result confirms the theoretical prediction of a steep gradient in the rotation profile towards the deep stellar interior.


Science | 2012

Kepler-36: A Pair of Planets with Neighboring Orbits and Dissimilar Densities

Joshua A. Carter; Eric Agol; W. J. Chaplin; Sarbani Basu; Timothy R. Bedding; Lars A. Buchhave; Jørgen Christensen-Dalsgaard; Katherine M. Deck; Y. Elsworth; Daniel C. Fabrycky; Eric B. Ford; Jonathan J. Fortney; S. J. Hale; R. Handberg; S. Hekker; Matthew J. Holman; Daniel Huber; Christopher Karoff; Steven D. Kawaler; Hans Kjeldsen; Jack J. Lissauer; Eric D. Lopez; Mikkel N. Lund; M. Lundkvist; T. S. Metcalfe; A. Miglio; Leslie A. Rogers; D. Stello; William J. Borucki; Steve Bryson

So Close and So Different In our solar system, the rocky planets have very distinct orbits from those of the gas giants. Carter et al. (p. 556, published online 21 June) report on a planetary system where this pattern does not apply, posing a challenge to theories of planet formation. Data from the Kepler space telescope reveal two planets with radically different densities orbiting the same star with very similar orbital periods. One planet has a rocky Earth-like composition and the other is akin to Neptune. The Kepler spacecraft detected a super-Earth and a Neptune-like planet in very tightly spaced orbits around the same star. In the solar system, the planets’ compositions vary with orbital distance, with rocky planets in close orbits and lower-density gas giants in wider orbits. The detection of close-in giant planets around other stars was the first clue that this pattern is not universal and that planets’ orbits can change substantially after their formation. Here, we report another violation of the orbit-composition pattern: two planets orbiting the same star with orbital distances differing by only 10% and densities differing by a factor of 8. One planet is likely a rocky “super-Earth,” whereas the other is more akin to Neptune. These planets are 20 times more closely spaced and have a larger density contrast than any adjacent pair of planets in the solar system.


The Astrophysical Journal | 2010

INITIAL CHARACTERISTICS OF KEPLER SHORT CADENCE DATA

Ronald L. Gilliland; Jon M. Jenkins; William J. Borucki; Stephen T. Bryson; Douglas A. Caldwell; Bruce D. Clarke; Jessie L. Dotson; Michael R. Haas; Jennifer R. Hall; Todd C. Klaus; David G. Koch; Sean McCauliff; Elisa V. Quintana; Joseph D. Twicken; Jeffrey Edward van Cleve

The Kepler Mission offers two options for observations -- either Long Cadence (LC) used for the bulk of core mission science, or Short Cadence (SC) which is used for applications such as asteroseismology of solar-like stars and transit timing measurements of exoplanets where the 1-minute sampling is critical. We discuss the characteristics of SC data obtained in the 33.5-day long Quarter 1 (Q1) observations with Kepler which completed on 15 June 2009. The truly excellent time series precisions are nearly Poisson limited at 11th magnitude providing per-point measurement errors of 200 parts-per-million per minute. For extremely saturated stars near 7th magnitude precisions of 40 ppm are reached, while for background limited measurements at 17th magnitude precisions of 7 mmag are maintained. We note the presence of two additive artifacts, one that generates regularly spaced peaks in frequency, and one that involves additive offsets in the time domain inversely proportional to stellar brightness. The difference between LC and SC sampling is illustrated for transit observations of TrES-2.


The Astrophysical Journal | 2010

SELECTION, PRIORITIZATION, AND CHARACTERISTICS OF KEPLER TARGET STARS

Natalie M. Batalha; William J. Borucki; David G. Koch; Stephen T. Bryson; Michael R. Haas; Timothy M. Brown; Douglas A. Caldwell; Jennifer R. Hall; Ronald L. Gilliland; David W. Latham; Soren Meibom; David G. Monet

The Kepler Mission began its 3.5 year photometric monitoring campaign in 2009 May on a select group of approximately 150,000 stars. The stars were chosen from the ~ half million in the field of view that are brighter than 16th magnitude. The selection criteria are quantitative metrics designed to optimize the scientific yield of the mission with regard to the detection of Earth-size planets in the habitable zone. This yields more than 90,000 G-type stars on or close to the main sequence, >20, 000 of which are brighter than 14th magnitude. At the temperature extremes, the sample includes approximately 3000 M-type dwarfs and a small sample of O- and B-type MS stars (<200). The small numbers of giants are included in the sample: ~5000 stars with surface gravities log(g) < 3.5. We present a brief summary of the selection process and the stellar populations it yields in terms of surface gravity, effective temperature, and apparent magnitude. In addition to the primary, statistically derived target set, several ancillary target lists were manually generated to enhance the science of the mission, examples being: known eclipsing binaries, open cluster members, and high proper motion stars.

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Eric B. Ford

Pennsylvania State University

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