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Interaction of Nanoparticles with Radiation

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arxiv astro-ph/0311066 v1 pith:BQQO4SAM submitted 2003-11-04 astro-ph

classification astro-ph
keywords interstellarnanoparticlesemissionexcitationheatingbandsphotonsmaller
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abstract

Interstellar grains span a wide range of sizes from a few angstroms to a few micrometers. The presence of nanometer-sized or smaller particles in the interstellar medium is indicated directly by the interstellar far ultraviolet (UV) extinction, the ubiquitous 3.3, 6.2, 7.7, 8.6, and 11.3$\mum$ polycyclic aromatic hydrocarbon (PAH) emission features, the near and mid infrared broadband emission seen in the IRAS 12 and 25$\mum$ bands and the COBE-DIRBE 3.5, 4.9, 12 and 25$\mum$ bands, the 10--100$\GHz$ Galactic foreground microwave emission, and indirectly by the heating of interstellar gas. For nanoparticles under interstellar conditions, UV/visible photon absorption is the dominant excitation process. With a heat capacity smaller than or comparable to the energy of an energetic stellar photon, nanoparticles are subject to single-photon heating, followed by vibrational relaxation, photoionization, and photodestruction. With excited electrons spatially confined, semiconductor nanoparticles are expected to luminesce efficiently. This review focuses on the photophysics of nanoparticles with emphasis on the stochastic heating and the vibrational excitation of interstellar PAH molecules, and the excitation of photoluminescence with special attention given to silicon nanoparticles.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 2 citations worldwide. Full citation record

  1. ReveaLLAGN 1: JWST Emission-Line Spectra Reveal Low-Luminosity AGN with UV-Deficient SEDs and Warm Molecular Gas

    astro-ph.GA 2026-01 conditional novelty 7.0 of 10

    JWST infrared spectra of eight low-luminosity AGN reveal a transition near 1/3000 of the Eddington rate below which ultraviolet ionizing photons drop sharply and molecular gas is roughly 500 K hotter than in brighter AGN.

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