MAGNETIC NANOPARTICLES IN THE INTERSTELLAR MEDIUM: EMISSION SPECTRUM AND POLARIZATION
МАГНИТНЫЕ НАНОЧАСТИЦЫ В МЕЖЗВЁЗДНОЙ СРЕДЕ: СПЕКТР ИЗЛУЧЕНИЯ И ПОЛЯРИЗАЦИЯ
2013-02-27
SCID: 54.1/b25q9tc5
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Davis-Greenstein alignmentinterstellar mediummagnetic dipole radiationmagnetic nanoparticlesmagnetite and maghemite
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Abstract (AI)
The presence of ferromagnetic or ferrimagnetic nanoparticles in the interstellar medium would give rise to magnetic dipole radiation at microwave and submillimeter frequencies.Such grains may account for the strong millimeterwavelength emission observed from a number of low-metallicity galaxies, including the Small Magellanic Cloud.We calculate the absorption and scattering cross sections for such grains, with particular attention to metallic Fe, magnetite Fe 3 O 4 , and maghemite γ -Fe 2 O 3 , all potentially present in the interstellar medium.The rate of Davis-Greenstein alignment by magnetic dissipation is also estimated.We determine the temperature of free-flying magnetic grains heated by starlight and calculate the polarization of the magnetic dipole emission from both freefliers and inclusions.For inclusions, the magnetic dipole emission is expected to be polarized orthogonally relative to the normal electric dipole radiation.Magnetic dipole radiation will contribute significantly to the 20-40 GHz anomalous microwave emission only if a large fraction of the Fe is in metallic Fe iron nanoparticles with extreme elongations.Finally, we present self-consistent dielectric functions for metallic Fe, magnetite Fe 3 O 4 , and maghemite γ -Fe 2 O 3 , enabling calculation of absorption and scattering cross sections from microwave to X-ray wavelengths.
Key Findings
1
Ferromagnetic and ferrimagnetic interstellar nanoparticles can produce magnetic dipole radiation at microwave and submillimeter frequencies.
2
Magnetic dipole emission from inclusions is expected to be polarized orthogonally to normal electric dipole emission.
3
Magnetic nanoparticles may explain strong millimeter-wavelength emission observed in some low-metallicity galaxies, including the Small Magellanic Cloud.
4
Magnetic nanoparticles significantly contribute to 20–40 GHz anomalous microwave emission only if much of the iron is in extremely elongated metallic-iron nanoparticles.
5
The study calculates absorption and scattering cross sections, alignment rates, grain temperatures, and polarization for metallic iron, magnetite, and maghemite nanoparticles.
Research Object
Ferromagnetic or ferrimagnetic nanoparticles in the interstellar medium, including metallic Fe, magnetite (Fe3O4), and maghemite (γ-Fe2O3) grains and inclusions
Research Subject
Their magnetic-dipole emission spectrum, absorption and scattering, Davis–Greenstein alignment, heating, and polarization from microwave to X-ray wavelengths
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2013-02-27
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