A High Geometric Albedo for LTT9779b Points Towards a Metal-rich Atmosphere and Silicate Clouds

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Main Authors: Saha, Suman, Jenkins, James S., Parmentier, Vivien, Hoyer, Sergio, Deleuil, Magali, Crossfield, Ian J. M., R., Pablo A. Peña, Vines, Jose I., Reyes, R. Ramírez, Díaz, Matías R.
Format: Preprint
Published: 2025
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_version_ 1866908479067783168
author Saha, Suman
Jenkins, James S.
Parmentier, Vivien
Hoyer, Sergio
Deleuil, Magali
Crossfield, Ian J. M.
R., Pablo A. Peña
Vines, Jose I.
Reyes, R. Ramírez
Díaz, Matías R.
author_facet Saha, Suman
Jenkins, James S.
Parmentier, Vivien
Hoyer, Sergio
Deleuil, Magali
Crossfield, Ian J. M.
R., Pablo A. Peña
Vines, Jose I.
Reyes, R. Ramírez
Díaz, Matías R.
contents Aims: In this work, we aim to confirm the high albedo of the benchmark ultrahot Neptune LTT9779b using 20 secondary eclipse measurements of the planet observed with CHEOPS. In addition, we perform a search for variability in the reflected light intensity of the planet as a function of time. Methods: First, we used the TESS follow-up data of LTT9779b from three sectors (2, 29, and 69) to remodel the transit signature and estimate an updated set of transit and ephemeris parameters, which were directly used in the modeling of the secondary eclipse lightcurves. This involved a critical noise-treatment algorithm, including sophisticated techniques such as wavelet denoising and Gaussian Process (GP) regression, to constrain noise levels from various sources. In addition to using the officially released reduced aperture photometry data from CHEOPS DRP, we also reduced the raw data using an independent PSF photometry pipeline, known as PIPE, to verify the robustness of our analysis. The extracted secondary eclipse lightcurves were modeled using the PYCHEOPS package, where we have detrended the background noise correlated with the spacecraft roll angle, originating from the inhomogeneous and asymmetric shape of the CHEOPS point spread function, using an N-order glint function. Results: Our independent lightcurve analyses have resulted in consistent estimations of the eclipse depths, with values of 89.9$\pm$13.7 ppm for the DRP analysis and 85.2$\pm$13.1 ppm from PIPE, indicating a high degree of statistical agreement. Adopting the DRP value yields a highly constrained geometric albedo of 0.73$\pm$0.11. No significant eclipse depth variability is detected down to a level of $\sim$37 ppm. Conclusions: Our results confirm that LTT9779b exhibits a strikingly high optical albedo, which substantially reduces the internal energy budget of the planet compared to more opaque...
format Preprint
id arxiv_https___arxiv_org_abs_2506_17550
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A High Geometric Albedo for LTT9779b Points Towards a Metal-rich Atmosphere and Silicate Clouds
Saha, Suman
Jenkins, James S.
Parmentier, Vivien
Hoyer, Sergio
Deleuil, Magali
Crossfield, Ian J. M.
R., Pablo A. Peña
Vines, Jose I.
Reyes, R. Ramírez
Díaz, Matías R.
Earth and Planetary Astrophysics
Aims: In this work, we aim to confirm the high albedo of the benchmark ultrahot Neptune LTT9779b using 20 secondary eclipse measurements of the planet observed with CHEOPS. In addition, we perform a search for variability in the reflected light intensity of the planet as a function of time. Methods: First, we used the TESS follow-up data of LTT9779b from three sectors (2, 29, and 69) to remodel the transit signature and estimate an updated set of transit and ephemeris parameters, which were directly used in the modeling of the secondary eclipse lightcurves. This involved a critical noise-treatment algorithm, including sophisticated techniques such as wavelet denoising and Gaussian Process (GP) regression, to constrain noise levels from various sources. In addition to using the officially released reduced aperture photometry data from CHEOPS DRP, we also reduced the raw data using an independent PSF photometry pipeline, known as PIPE, to verify the robustness of our analysis. The extracted secondary eclipse lightcurves were modeled using the PYCHEOPS package, where we have detrended the background noise correlated with the spacecraft roll angle, originating from the inhomogeneous and asymmetric shape of the CHEOPS point spread function, using an N-order glint function. Results: Our independent lightcurve analyses have resulted in consistent estimations of the eclipse depths, with values of 89.9$\pm$13.7 ppm for the DRP analysis and 85.2$\pm$13.1 ppm from PIPE, indicating a high degree of statistical agreement. Adopting the DRP value yields a highly constrained geometric albedo of 0.73$\pm$0.11. No significant eclipse depth variability is detected down to a level of $\sim$37 ppm. Conclusions: Our results confirm that LTT9779b exhibits a strikingly high optical albedo, which substantially reduces the internal energy budget of the planet compared to more opaque...
title A High Geometric Albedo for LTT9779b Points Towards a Metal-rich Atmosphere and Silicate Clouds
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2506.17550