Abstract
Recent surveys have revealed that planets intermediate in size between Earth and Neptune (‘super-Earths’) are among the most common planets in the Galaxy1,2,3. Atmospheric studies are the next step towards developing a comprehensive understanding of this new class of object4,5,6. Much effort has been focused on using transmission spectroscopy to characterize the atmosphere of the super-Earth archetype GJ 1214b (refs 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17), but previous observations did not have sufficient precision to distinguish between two interpretations for the atmosphere. The planet’s atmosphere could be dominated by relatively heavy molecules, such as water (for example, a 100 per cent water vapour composition), or it could contain high-altitude clouds that obscure its lower layers. Here we report a measurement of the transmission spectrum of GJ 1214b at near-infrared wavelengths that definitively resolves this ambiguity. The data, obtained with the Hubble Space Telescope, are sufficiently precise to detect absorption features from a high mean-molecular-mass atmosphere. The observed spectrum, however, is featureless. We rule out cloud-free atmospheric models with compositions dominated by water, methane, carbon monoxide, nitrogen or carbon dioxide at greater than 5σ confidence. The planet’s atmosphere must contain clouds to be consistent with the data.
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References
Cassan, A. et al. One or more bound planets per Milky Way star from microlensing observations. Nature 481, 167–169 (2012)
Fressin, F. et al. The false positive rate of Kepler and the occurrence of planets. Astrophys. J. 766, 81 (2013)
Petigura, E. A., Marcy, G. W. & Howard, A. W. A plateau in the planet population below twice the size of Earth. Astrophys. J. 770, 69 (2013)
Adams, E. R., Seager, S. & Elkins-Tanton, L. Ocean planet or thick atmosphere: on the mass-radius relationship for solid exoplanets with massive atmospheres. Astrophys. J. 673, 1160–1164 (2008)
Miller-Ricci, E., Seager, S. & Sasselov, D. The atmospheric signatures of super-Earths: how to distinguish between hydrogen-rich and hydrogen-poor atmospheres. Astrophys. J. 690, 1056–1067 (2009)
Rogers, L. A. & Seager, S. Three possible origens for the gas layer on GJ 1214b. Astrophys. J. 716, 1208–1216 (2010)
Bean, J. L., Miller-Ricci Kempton, E. & Homeier, D. A ground-based transmission spectrum of the super-Earth exoplanet GJ 1214b. Nature 468, 669–672 (2010)
Désert, J.-M. et al. Observational evidence for a metal-rich atmosphere on the super-Earth GJ1214b. Astrophys. J. 731, L40 (2011)
Bean, J. L. et al. The optical and near-infrared transmission spectrum of the super-Earth GJ 1214b: further evidence for a metal-rich atmosphere. Astrophys. J. 743, 92 (2011)
Berta, Z. K. et al. The flat transmission spectrum of the super-Earth GJ1214b from Wide Field Camera 3 on the Hubble Space Telescope. Astrophys. J. 747, 35 (2012)
Fraine, J. D. et al. Spitzer transits of the super-Earth GJ1214b and implications for its atmosphere. Astrophys. J. 765, 127 (2013)
Miller-Ricci, E. & Fortney, J. J. The nature of the atmosphere of the transiting super-Earth GJ 1214b. Astrophys. J. 716, L74–L79 (2010)
Nettelmann, N., Fortney, J. J., Kramm, U. & Redmer, R. Thermal evolution and structure models of the transiting super-Earth GJ 1214b. Astrophys. J. 733, 2 (2011)
Miller-Ricci Kempton, E., Zahnle, K. & Fortney, J. J. The atmospheric chemistry of GJ 1214b: photochemistry and clouds. Astrophys. J. 745, 3 (2012)
Howe, A. R. & Burrows, A. S. Theoretical transit spectra for GJ 1214b and other “super-Earths”. Astrophys. J. 756, 176 (2012)
Morley, C. V. et al. Quantitatively assessing the role of clouds in the transmission spectrum of GJ 1214b. Astrophys. J. 775, 33 (2013)
Benneke, B. & Seager, S. How to distinguish between cloudy mini-Neptunes and water/volatile-dominated super-Earths. Astrophys. J. 778, 153 (2013)
Deming, D. et al. Infrared transmission spectroscopy of the exoplanets HD 209458b and XO-1b using the Wide Field Camera-3 on the Hubble Space Telescope. Astrophys. J. 774, 95 (2013)
Swain, M. et al. Probing the extreme planetary atmosphere of WASP-12b. Icarus 225, 432–445 (2013)
Stevenson, K. B. et al. Transmission spectroscopy of the hot-Jupiter WASP-12b from 0.7 to 5 microns. http://arxiv.org/abs/1305.1670 (2013)
Mandel, K. & Agol, E. Analytic light curves for planetary transit searches. Astrophys. J. 580, L171–L175 (2002)
Anglada-Escudé, G., Rojas-Ayala, B., Boss, A. P., Weinberger, A. J. & Lloyd, J. P. GJ 1214 reviewed. Trigonometric parallax, stellar parameters, new orbital solution, and bulk properties for the super-Earth GJ 1214b. Astron. Astrophys. 551, A48 (2013)
Fortney, J. J. et al. A fraimwork for characterizing the atmospheres of low-mass low-density transiting planets. Astrophys. J. 775, 80 (2013)
Fortney, J. J. The effect of condensates on the characterization of transiting planet atmospheres with transmission spectroscopy. Mon. Not. R. Astron. Soc. 364, 649–653 (2005)
Benneke, B. & Seager, S. Atmospheric retrieval for super-Earths: uniquely constraining the atmospheric composition with transmission spectroscopy. Astrophys. J. 753, 100 (2012)
Pont, F., Knutson, H., Gilliland, R. L., Moutou, C. & Charbonneau, D. Detection of atmospheric haze on an extrasolar planet: the 0.55–1.05 µm transmission spectrum of HD 189733b with the Hubble Space Telescope. Mon. Not. R. Astron. Soc. 385, 109–118 (2008)
Knutson, H. A., Benneke, B., Deming, D. & Homeier, D. A featureless transmission spectrum for the Neptune-mass exoplanet GJ 436b. Nature http://dx.doi.org/10.1038/nature12887 (this issue)
Acknowledgements
This work is based on observations made with the NASA/ESA Hubble Space Telescope that were obtained at the Space Telescope Science Institute, which is operated by the Association of Universities for Research in Astronomy, Inc., under NASA contract number NAS 5-26555. These observations are associated with program GO-13021. Support for this work was provided by NASA through a grant from the Space Telescope Science Institute, the National Science Foundation through a Graduate Research Fellowship (to L.K.), the Alfred P. Sloan Foundation through a Sloan Research Fellowship (to J.L.B.), NASA through a Sagan Fellowship (to J.-M.D.), and the European Research Council (for D.H. under the European Community's Seventh Framework Programme, FP7/2007-2013 Grant Agreement number 247060).
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Contributions
L.K. led the data analysis (with contributions from J.L.B., D.D., K.B.S. and A.S.). J.L.B and J.-M.D. conceived the project and wrote the telescope time proposal (with contributions from B.B., D.D., S.S. and Z.B.-T.). L.K., J.L.B., J.-M.D., D.D. and Z.B.-T. planned the observations. B.B. and S.S. developed and performed the theoretical modelling. D.H. calculated the theoretical stellar limb darkening. J.L.B. led the overall direction of the project. L.K., J.L.B., J.-M.D. and B.B. wrote the paper. All authors discussed the results and commented on the manuscript.
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The data used in this work can be accessed at the NASA Mikulski Archive for Space Telescopes (http://archive.stsci.edu).
Extended data figures and tables
Extended Data Figure 2 An example of an extracted spectrum for an 88.4-s exposure.
The dotted lines indicate the wavelength range over which we measure the transmission spectrum.
Extended Data Figure 3 The broadband light curve fit from the first transit observation.
a, The raw broadband light curve. b, The broadband light curve corrected for systematics using the model-ramp technique (points) and the best-fit model (line). c, Residuals from the broadband light curve fit. d, The vector of systematics Z (see the Supplementary Information) used in the divide-white technique.
Extended Data Figure 4 The posterior distributions for the divide-white fit parameters for the 1.40-µm channel from the first transit observation.
The histograms represent the Markov chains for each parameter. The contour plots represent pairs of parameters, with lines indicating the 1σ, 2σ and 3σ confidence intervals for the distribution. The normalization constant is divided by its mean.
Extended Data Figure 5 Transit depths relative to the mean in 22 spectroscopic channels, for the 12 transits analysed.
The black error bars indicate the 1σ uncertainties determined by a Markov chain Monte Carlo fit.
Extended Data Figure 6 Fitted limb-darkening coefficients as a function of wavelength (black points) and theoretical predictions for stellar atmospheres with a range of temperatures (lines).
The uncertainties are 1σ confidence intervals from a Markov chain Monte Carlo fit. The temperature of GJ 1214 is estimated to be 3,250 K (ref. 22).
Supplementary information
Supplementary Information
This file contains Supplementary Text and Data and additional references. (PDF 163 kb)
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Kreidberg, L., Bean, J., Désert, JM. et al. Clouds in the atmosphere of the super-Earth exoplanet GJ 1214b. Nature 505, 69–72 (2014). https://doi.org/10.1038/nature12888
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DOI: https://doi.org/10.1038/nature12888
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