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Planck intermediate results. XXII. Frequency dependence of thermal emission from Galactic dust in intensity and polarization

Journal Article · · Astronomy and Astrophysics
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Planck has mapped the intensity and polarization of the sky at microwave frequencies with unprecedented sensitivity. We use these data to characterize the frequency dependence of dust emission. We utilize the Planck 353 GHz I, Q, and U Stokes maps as dust templates, and cross-correlate them with the Planck and WMAP data at 12 frequencies from 23 to 353 GHz, over circular patches with 10° radius. The cross-correlation analysis is performed for both intensity and polarization data in a consistent manner. The conclusions are corrected for the chance correlation between the templates and the anisotropies of the cosmic microwave background. We use a mask that focuses our analysis on the diffuse interstellar medium at intermediate Galactic latitudes. We determine the spectral indices of dust emission in intensity and polarization between 100 and 353 GHz, for each sky patch. Both indices are found to be remarkably constant over the sky. The mean values, 1.59 ± 0.02 for polarization and 1.51 ± 0.01 for intensity, for a mean dust temperature of 19.6 K, are close, but significantly different (3.6σ). We determine the mean spectral energy distribution (SED) of the microwave emission, correlated with the 353 GHz dust templates, by averaging the results of the correlation over all sky patches. We find that the mean SED increases for decreasing frequencies at ν< 60 GHz for both intensity and polarization. The rise of the polarization SED towards low frequencies may be accounted for by a synchrotron component correlated with dust, with no need for any polarization of the anomalous microwave emission. We use a spectral model to separate the synchrotron and dust polarization and to characterize the spectral dependence of the dust polarization fraction. The polarization fraction (p) of the dust emission decreases by (21 ± 6)% from 353 to 70 GHz. We discuss this result within the context of existing dust models. The decrease in p could indicate differences in polarization efficiency among components of interstellar dust (e.g., carbon versus silicate grains). Our observational results provide inputs to quantify and optimize the separation between Galactic and cosmological polarization.
Research Organization:
Lawrence Berkeley National Laboratory (LBNL), Berkeley, CA (United States)
Sponsoring Organization:
USDOE Office of Science (SC)
Contributing Organization:
Planck Collaboration
Grant/Contract Number:
AC02-05CH11231
OSTI ID:
1524026
Journal Information:
Astronomy and Astrophysics, Journal Name: Astronomy and Astrophysics Vol. 576; ISSN 0004-6361
Publisher:
EDP SciencesCopyright Statement
Country of Publication:
United States
Language:
English

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Dust models compatible with Planck intensity and polarization data in translucent lines of sight journal February 2018
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Planck 2015 results: XX. Constraints on inflation text January 2016
Spinning dust Emission from Ultra-Small Silicates: Emissivity and Polarization Spectrum journal June 2016
Quantum Suppression of Alignment in Ultrasmall Grains: Microwave Emission from Spinning dust will be Negligibly Polarized journal October 2016
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Mitigating Complex Dust Foregrounds in Future Cosmic Microwave Background Polarization Experiments journal January 2018
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Probing the diffuse baryon distribution with the lensing-tSZ cross-correlation text January 2014
Planck intermediate results. XXX. The angular power spectrum of polarized dust emission at intermediate and high Galactic latitudes text January 2014
Planck 2015 results. I. Overview of products and scientific results text January 2015
Planck 2015 results. X. Diffuse component separation: Foreground maps text January 2015
Planck 2015 results. XIII. Cosmological parameters text January 2015
Detecting Primordial $B$-Modes after Planck preprint January 2015
Planck 2015 results. XXV. Diffuse low-frequency Galactic foregrounds text January 2015
The present and future of the most favoured inflationary models after $Planck$ 2015 text January 2015
Spinning dust emission from ultrasmall silicates: emissivity and polarization spectrum text January 2016
Cosmic Infrared Background anisotropies as a window into primordial non-Gaussianity text January 2016
Simulated forecasts for primordial B-mode searches in ground-based experiments text January 2016
The Python Sky Model: software for simulating the Galactic microwave sky text January 2016
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The C-Band All-Sky Survey (C-BASS): Design and capabilities text January 2018
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