Activity in White Dwarf Debris Disks I: Spitzer Legacy Reveals Variability Incompatible with the Canonical Model

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Hauptverfasser: Noor, Hiba Tu, Farihi, Jay, Kenyon, Scott J., Rafikov, Roman R., Wyatt, Mark C., Su, Kate Y. L., Melis, Carl, Swan, Andrew, Wilson, Thomas G., Gänsicke, Boris T., Bonsor, Amy, Rogers, Laura K., Redfield, Seth, Kilic, Mukremin
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Veröffentlicht: 2025
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author Noor, Hiba Tu
Farihi, Jay
Kenyon, Scott J.
Rafikov, Roman R.
Wyatt, Mark C.
Su, Kate Y. L.
Melis, Carl
Swan, Andrew
Wilson, Thomas G.
Gänsicke, Boris T.
Bonsor, Amy
Rogers, Laura K.
Redfield, Seth
Kilic, Mukremin
author_facet Noor, Hiba Tu
Farihi, Jay
Kenyon, Scott J.
Rafikov, Roman R.
Wyatt, Mark C.
Su, Kate Y. L.
Melis, Carl
Swan, Andrew
Wilson, Thomas G.
Gänsicke, Boris T.
Bonsor, Amy
Rogers, Laura K.
Redfield, Seth
Kilic, Mukremin
contents This study presents all available, multi-epoch 3.6 and 4.5 $μ$m photometry from Spitzer Space Telescope observations of white dwarf debris disks, including weekly cadence observations of 16 relatively bright systems, and 5 h staring-mode observations for five of these. Significant variability is detected in 85 per cent of disks and across all timescales probed, from minutes to weeks to years, where the largest flux changes correlate with the longest time baselines, and the infrared excesses persist utterly. While each source is idiosyncratic, the overall results indicate the most variable disks correlate with those that are the brightest (dustiest), and also among those with detected gas, demonstrating both dust and gas are produced via ongoing collisions. There is a correlation between flux and colour changes, where disks tend to appear redder when dimmer and bluer when brighter, consistent with an excess of small dust grains produced in collisions, followed by a gradual return to equilibrium. The overall results are a drastic departure from the predictions of the canonical - geometrically thin, optically thick - disk in both flux and colour, but are broadly consistent with collisional evolution based on a simple model. The data presented herein constitute a legacy resource that can inform time-series studies of polluted and dusty white dwarfs, and importantly serve as a basis for future disk modelling, beyond the pioneering canonical framework.
format Preprint
id arxiv_https___arxiv_org_abs_2508_13119
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Activity in White Dwarf Debris Disks I: Spitzer Legacy Reveals Variability Incompatible with the Canonical Model
Noor, Hiba Tu
Farihi, Jay
Kenyon, Scott J.
Rafikov, Roman R.
Wyatt, Mark C.
Su, Kate Y. L.
Melis, Carl
Swan, Andrew
Wilson, Thomas G.
Gänsicke, Boris T.
Bonsor, Amy
Rogers, Laura K.
Redfield, Seth
Kilic, Mukremin
Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
This study presents all available, multi-epoch 3.6 and 4.5 $μ$m photometry from Spitzer Space Telescope observations of white dwarf debris disks, including weekly cadence observations of 16 relatively bright systems, and 5 h staring-mode observations for five of these. Significant variability is detected in 85 per cent of disks and across all timescales probed, from minutes to weeks to years, where the largest flux changes correlate with the longest time baselines, and the infrared excesses persist utterly. While each source is idiosyncratic, the overall results indicate the most variable disks correlate with those that are the brightest (dustiest), and also among those with detected gas, demonstrating both dust and gas are produced via ongoing collisions. There is a correlation between flux and colour changes, where disks tend to appear redder when dimmer and bluer when brighter, consistent with an excess of small dust grains produced in collisions, followed by a gradual return to equilibrium. The overall results are a drastic departure from the predictions of the canonical - geometrically thin, optically thick - disk in both flux and colour, but are broadly consistent with collisional evolution based on a simple model. The data presented herein constitute a legacy resource that can inform time-series studies of polluted and dusty white dwarfs, and importantly serve as a basis for future disk modelling, beyond the pioneering canonical framework.
title Activity in White Dwarf Debris Disks I: Spitzer Legacy Reveals Variability Incompatible with the Canonical Model
topic Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2508.13119