Cosmoglobe DR2. VII. Towards a concordance model of large-scale thermal dust emission for microwave and infrared frequencies

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Main Authors: Gjerløw, E., Sullivan, R. M., Aurvik, R., Basyrov, A., Bianchi, L. A., Bonato, A., Brilenkov, M., Eriksen, H. K., Fuskeland, U., Galloway, M., Glasscock, K. A., Hergt, L. T., Herman, D., Lunde, J. G. S., San, M., Martins, A. I. Silva, Sponseller, D., Stutzer, N. -O., Thommesen, H., Vikenes, V., Watts, D. J., Wehus, I. K., Zapelli, L.
Format: Preprint
Published: 2026
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author Gjerløw, E.
Sullivan, R. M.
Aurvik, R.
Basyrov, A.
Bianchi, L. A.
Bonato, A.
Brilenkov, M.
Eriksen, H. K.
Fuskeland, U.
Galloway, M.
Glasscock, K. A.
Hergt, L. T.
Herman, D.
Lunde, J. G. S.
San, M.
Martins, A. I. Silva
Sponseller, D.
Stutzer, N. -O.
Thommesen, H.
Vikenes, V.
Watts, D. J.
Wehus, I. K.
Zapelli, L.
author_facet Gjerløw, E.
Sullivan, R. M.
Aurvik, R.
Basyrov, A.
Bianchi, L. A.
Bonato, A.
Brilenkov, M.
Eriksen, H. K.
Fuskeland, U.
Galloway, M.
Glasscock, K. A.
Hergt, L. T.
Herman, D.
Lunde, J. G. S.
San, M.
Martins, A. I. Silva
Sponseller, D.
Stutzer, N. -O.
Thommesen, H.
Vikenes, V.
Watts, D. J.
Wehus, I. K.
Zapelli, L.
contents We fit a four-component thermal dust model to COBE-DIRBE data between 3.5 and 240 micron within the global Bayesian end-to-end Cosmoglobe DR2 reanalysis. Following a companion analysis of Planck HFI, the four components of this model correspond to "hot dust", "cold dust", "nearby dust", and "Halpha correlated dust", respectively, and each component is modelled in terms of a fixed spatial template and a spatially isotropic spectral energy density (SED) defined by an overall free amplitude for each DIRBE channel. Except for the cold dust amplitude, which is only robustly detected in the 240 micron channel, we measure statistically significant template amplitudes for all components in all DIRBE channels between 12 and 240 micron. In the 3.5 and 4.9 micron channels, only the hot component is detected, while the 1.25 and 2.2 micron channels are too dominated by starlight emission to allow robust dust detections. The total number of DIRBE-specific degrees of freedom in this model is 25. Despite this low dimensionality, the resulting total SED agrees well with recent astrodust predictions. At both low and high frequencies, more than 95 % of the frequency map variance is captured by the model, while at 60 and 100 micron about 70 % of the signal variance is successfully accounted for. The hot dust component, which in a companion paper has been found to correlate strongly with C ii emission, has the highest absolute amplitude in all DIRBE frequency channels; in particular, at 3.5 micron, which is known to be dominated by polycyclic aromatic hydrocarbon emission, this component accounts for at least 80 % of the total signal. This analysis represents an important step towards establishing a joint concordance model of thermal dust emission applicable to both the microwave and infrared regimes.
format Preprint
id arxiv_https___arxiv_org_abs_2601_07822
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Cosmoglobe DR2. VII. Towards a concordance model of large-scale thermal dust emission for microwave and infrared frequencies
Gjerløw, E.
Sullivan, R. M.
Aurvik, R.
Basyrov, A.
Bianchi, L. A.
Bonato, A.
Brilenkov, M.
Eriksen, H. K.
Fuskeland, U.
Galloway, M.
Glasscock, K. A.
Hergt, L. T.
Herman, D.
Lunde, J. G. S.
San, M.
Martins, A. I. Silva
Sponseller, D.
Stutzer, N. -O.
Thommesen, H.
Vikenes, V.
Watts, D. J.
Wehus, I. K.
Zapelli, L.
Cosmology and Nongalactic Astrophysics
Astrophysics of Galaxies
We fit a four-component thermal dust model to COBE-DIRBE data between 3.5 and 240 micron within the global Bayesian end-to-end Cosmoglobe DR2 reanalysis. Following a companion analysis of Planck HFI, the four components of this model correspond to "hot dust", "cold dust", "nearby dust", and "Halpha correlated dust", respectively, and each component is modelled in terms of a fixed spatial template and a spatially isotropic spectral energy density (SED) defined by an overall free amplitude for each DIRBE channel. Except for the cold dust amplitude, which is only robustly detected in the 240 micron channel, we measure statistically significant template amplitudes for all components in all DIRBE channels between 12 and 240 micron. In the 3.5 and 4.9 micron channels, only the hot component is detected, while the 1.25 and 2.2 micron channels are too dominated by starlight emission to allow robust dust detections. The total number of DIRBE-specific degrees of freedom in this model is 25. Despite this low dimensionality, the resulting total SED agrees well with recent astrodust predictions. At both low and high frequencies, more than 95 % of the frequency map variance is captured by the model, while at 60 and 100 micron about 70 % of the signal variance is successfully accounted for. The hot dust component, which in a companion paper has been found to correlate strongly with C ii emission, has the highest absolute amplitude in all DIRBE frequency channels; in particular, at 3.5 micron, which is known to be dominated by polycyclic aromatic hydrocarbon emission, this component accounts for at least 80 % of the total signal. This analysis represents an important step towards establishing a joint concordance model of thermal dust emission applicable to both the microwave and infrared regimes.
title Cosmoglobe DR2. VII. Towards a concordance model of large-scale thermal dust emission for microwave and infrared frequencies
topic Cosmology and Nongalactic Astrophysics
Astrophysics of Galaxies
url https://arxiv.org/abs/2601.07822