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Kepler and Ground-based Transits of the Exo-Neptune HAT-P-11b

  • Drake Deming
    ,
  • ,
  • Brian Jackson
    ,
  • Steven W. Peterson
    ,
  • Eric Agol
    ,
  • Heather A. Knutson
  • ,
  • Departamento de Física y Matemáticas, Universidad de Monterrey, Garza García, Mexico
    ,
  • Visiting Astronomer, Kitt Peak National Observatory, National Optical Astronomy Observatory, which is operated by the Association of Universities for Research in Astronomy under cooperative agreement with the National Science Foundation.
    ,
  • NASA Postdoctoral Fellow.
    ,
  • Kitt Peak National Observatory, National Optical Astronomy Observatory, Tucson, AZ 85719, USA
    ,
  • Miller Visiting Professor at UC Berkeley.
Research Output: Contribution to journal Article Peer-review

Open access

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Metrics

SciVal
FWCI
1.24
SciVal
Author count
9
SciVal
Citations
54
SciVal
Paper percentile
77
Scopus
Citations

Abstract

We analyze 26 archival Kepler transits of the exo-Neptune HAT-P-11b, supplemented by ground-based transits observed in the blue (B band) and near-IR (J band). Both the planet and host star are smaller than previously believed; our analysis yields R p = 4.31 R 0.06 R and R s = 0.683 R 0.009 R , both about 3σ smaller than the discovery values. Our ground-based transit data at wavelengths bracketing the Kepler bandpass serve to check the wavelength dependence of stellar limb darkening, and the J-band transit provides a precise and independent constraint on the transit duration. Both the limb darkening and transit duration from our ground-based data are consistent with the new Kepler values for the system parameters. Our smaller radius for the planet implies that its gaseous envelope can be less extensive than previously believed, being very similar to the H-He envelope of GJ436b and Kepler-4b. HAT-P-11 is an active star, and signatures of star spot crossings are ubiquitous in the Kepler transit data. We develop and apply a methodology to correct the planetary radius for the presence of both crossed and uncrossed star spots. Star spot crossings are concentrated at phases -0.002 and +0.006. This is consistent with inferences from Rossiter-McLaughlin measurements that the planet transits nearly perpendicular to the stellar equator. We identify the dominant phases of star spot crossings with active latitudes on the star, and infer that the stellar rotational pole is inclined at about 12° 5° to the plane of the sky. We point out that precise transit measurements over long durations could in principle allow us to construct a stellar Butterfly diagram to probe the cyclic evolution of magnetic activity on this active K-dwarf star.

Publication Information

Output type

Research Output: Contribution to journal Article Peer-review

Original language

English

Article number

33

Pages from-to (Number of pages)

Pages 33

Journal (Volume, Issue Number)

Astrophysical Journal (Volume 740, Issue 1)

Publication milestones

  • Published - 10/10/2011

Publication status

Published - 10/10/2011

ISSN

0004-637X

Publication IDs

  • Scopus: 80053489174

Funding Details

FundersFunding numbers
NSF
-
MPS
0645416
MPS
-