NEW ANALYSIS INDICATES NO THERMAL INVERSION IN THE ATMOSPHERE OF HD 209458b

被引:92
作者
Diamond-Lowe, Hannah [1 ]
Stevenson, Kevin B. [1 ]
Bean, Jacob L. [1 ]
Line, Michael R. [2 ]
Fortney, Jonathan J. [2 ]
机构
[1] Univ Chicago, Dept Astron & Astrophys, Chicago, IL 60637 USA
[2] Univ Calif Santa Cruz, Dept Astron & Astrophys, Santa Cruz, CA 95064 USA
关键词
planetary systems; stars: individual (HD 209458); techniques: photometric; SYSTEMATIC RETRIEVAL ANALYSIS; PLANETARY-ATMOSPHERES; HOT JUPITERS; LIGHT CURVES; EXOPLANET; EMISSION; TRANSIT; TEMPERATURE; SPECTRUM; SPITZER;
D O I
10.1088/0004-637X/796/1/66
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
An important focus of exoplanet research is the determination of the atmospheric temperature structure of strongly irradiated gas giant planets, or hot Jupiters. HD 209458b is the prototypical exoplanet for atmospheric thermal inversions, but this assertion does not take into account recently obtained data or newer data reduction techniques. We reexamine this claim by investigating all publicly available Spitzer Space Telescope secondary-eclipse photometric data of HD 209458b and performing a self-consistent analysis. We employ data reduction techniques that minimize stellar centroid variations, apply sophisticated models to known Spitzer systematics, and account for time-correlated noise in the data. We derive new secondary-eclipse depths of 0.119% +/- 0.007%, 0.123% +/- 0.006%, 0.134% +/- 0.035%, and 0.215% +/- 0.008% in the 3.6, 4.5, 5.8, and 8.0 mu m bandpasses, respectively. We feed these results into a Bayesian atmospheric retrieval analysis and determine that it is unnecessary to invoke a thermal inversion to explain our secondary-eclipse depths. The data are well fitted by a temperature model that decreases monotonically between pressure levels of 1 and 0.01 bars. We conclude that there is no evidence for a thermal inversion in the atmosphere of HD 209458b.
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页数:7
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共 29 条
[1]   Theoretical spectral models of the planet HD 209458b with a thermal inversion and water emission bands [J].
Burrows, A. ;
Hubeny, I. ;
Budaj, J. ;
Knutson, H. A. ;
Charbonneau, D. .
ASTROPHYSICAL JOURNAL, 2007, 668 (02) :L171-L174
[2]   PARAMETER ESTIMATION FROM TIME-SERIES DATA WITH CORRELATED ERRORS: A WAVELET-BASED METHOD AND ITS APPLICATION TO TRANSIT LIGHT CURVES [J].
Carter, Joshua A. ;
Winn, Joshua N. .
ASTROPHYSICAL JOURNAL, 2009, 704 (01) :51-67
[3]   Detection of thermal emission from an extrasolar planet [J].
Charbonneau, D ;
Allen, LE ;
Megeath, ST ;
Torres, G ;
Alonso, R ;
Brown, TM ;
Gilliland, RL ;
Latham, DW ;
Mandushev, G ;
O'Donovan, FT ;
Sozzetti, A .
ASTROPHYSICAL JOURNAL, 2005, 626 (01) :523-529
[4]   Spitzer/MIPS 24 μm OBSERVATIONS OF HD 209458b: THREE ECLIPSES, TWO AND A HALF TRANSITS, AND A PHASE CURVE CORRUPTED BY INSTRUMENTAL SENSITIVITY VARIATIONS [J].
Crossfield, Ian J. M. ;
Knutson, Heather ;
Fortney, Jonathan ;
Showman, Adam P. ;
Cowan, Nicolas B. ;
Deming, Drake .
ASTROPHYSICAL JOURNAL, 2012, 752 (02)
[5]   WASP-8b: CHARACTERIZATION OF A COOL AND ECCENTRIC EXOPLANET WITH SPITZER [J].
Cubillos, Patricio ;
Harrington, Joseph ;
Madhusudhan, Nikku ;
Stevenson, Kevin B. ;
Hardy, Ryan A. ;
Blecic, Jasmina ;
Anderson, David R. ;
Hardin, Matthew ;
Campo, Christopher J. .
ASTROPHYSICAL JOURNAL, 2013, 768 (01)
[6]   The Infrared Array Camera (IRAC) for the Spitzer Space Telescope [J].
Fazio, GG ;
Hora, JL ;
Allen, LE ;
Ashby, MLN ;
Barmby, P ;
Deutsch, LK ;
Huang, JS ;
Kleiner, S ;
Marengo, M ;
Megeath, ST ;
Melnick, GJ ;
Pahre, MA ;
Patten, BM ;
Polizotti, J ;
Smith, HA ;
Taylor, RS ;
Wang, Z ;
Willner, SP ;
Hoffmann, WF ;
Pipher, JL ;
Forrest, WJ ;
McMurty, CW ;
McCreight, CR ;
McKelvey, ME ;
McMurray, RE ;
Koch, DG ;
Moseley, SH ;
Arendt, RG ;
Mentzell, JE ;
Marx, CT ;
Losch, P ;
Mayman, P ;
Eichhorn, W ;
Krebs, D ;
Jhabvala, M ;
Gezari, DY ;
Fixsen, DJ ;
Flores, J ;
Shakoorzadeh, K ;
Jungo, R ;
Hakun, C ;
Workman, L ;
Karpati, G ;
Kichak, R ;
Whitley, R ;
Mann, S ;
Tollestrup, EV ;
Eisenhardt, P ;
Stern, D ;
Gorjian, V .
ASTROPHYSICAL JOURNAL SUPPLEMENT SERIES, 2004, 154 (01) :10-17
[7]   A unified theory for the atmospheres of the hot and very hot jupiters: Two classes of irradiated atmospheres [J].
Fortney, J. J. ;
Lodders, K. ;
Marley, M. S. ;
Freedman, R. S. .
ASTROPHYSICAL JOURNAL, 2008, 678 (02) :1419-1435
[8]   On the radiative equilibrium of irradiated planetary atmospheres [J].
Guillot, T. .
ASTRONOMY & ASTROPHYSICS, 2010, 520
[9]   The hottest planet [J].
Harrington, Joseph ;
Luszcz, Statia ;
Seager, Sara ;
Deming, Drake ;
Richardson, L. Jeremy .
NATURE, 2007, 447 (7145) :691-693
[10]   A possible bifurcation in atmospheres of strongly irradiated stars and planets [J].
Hubeny, I ;
Burrows, A ;
Sudarsky, D .
ASTROPHYSICAL JOURNAL, 2003, 594 (02) :1011-1018