The Photophysics of the Carrier of Extended Red Emission
arXiv:astro-ph/0109482 · doi:10.1086/324542
Abstract
Interstellar dust contains a component which reveals its presence by emitting a broad, unstructured band of light in the 540 to 950 nm wavelength range, referred to as Extended Red Emission (ERE). The presence of interstellar dust and ultraviolet photons are two necessary conditions for ERE to occur. This is the basis for suggestions which attribute ERE to an interstellar dust component capable of photoluminescence. In this study, we have collected all published ERE observations with absolute-calibrated spectra for interstellar environments, where the density of ultraviolet photons can be estimated reliably. In each case, we determined the band-integrated ERE intensity, the wavelength of peak emission in the ERE band, and the efficiency with which absorbed ultraviolet photons are contributing to the ERE. The data show that radiation is not only driving the ERE, as expected for a photoluminescence process, but is modifying the ERE carrier as manifested by a systematic increase in the ERE band's peak wavelength and a general decrease in the photon conversion efficiency with increasing densities of the prevailing exciting radiation. The overall spectral characteristics of the ERE and the observed high quantum efficiency of the ERE process are currently best matched by the recently proposed silicon nanoparticle (SNP) model. Using the experimentally established fact that ionization of semiconductor nanoparticles quenches their photoluminescence, we proceeded to test the SNP model by developing a quantitative model for the excitation and ionization equilibrium of SNPs under interstellar conditions for a wide range of radiation field densities.
42 p., incl. 8 fig. Accepted for publication by ApJ
References in corpus (6)
- Infrared Emission from Interstellar Dust. II. The Diffuse Interstellar Medium
- Photoelectric Emission from Interstellar Dust: Grain Charging and Gas Heating
- Multiple Scattering in Clumpy Media. II. Galactic Environments
- The DIRTY Model II: Self-Consistent Treatment of Dust Heating and Emission in a 3-D Radiative Transfer Code
- SiO Emission in the Multi-Lobe Outflow associated with IRAS 16293-2422
- Dust Emission Features in NGC 7023 between 0.35 and 2.5 micron: Extended Red Emission (0.7 micron) and Two New Emission Features (1.15 and 1.5 micron)
Cited by in corpus (23)
- Interstellar Dust Grains
- Three-Dimensional Dust Radiative Transfer
- Observational Constraints on the Physical Properties of Interstellar Dust in the Post-Planck Era
- The Excitation of Extended Red Emission: New Constraints on its Carrier From HST Observations of NGC 7023
- Extended Red Emission in High-Galactic Latitude Interstellar Clouds
- Emerging Massive Star Clusters Revealed: High Resolution Imaging of NGC 4449 from the Radio to the Ultraviolet
- Reconsidering the origin of the 21 micron feature: Oxides in carbon-rich PPNe?
- Extended Red Emission and the evolution of carbonaceaous nanograins in NGC 7023
- Extended Red Emission: Observational constraints for models
- On Titanium Carbide Nanoparticles as the Origin of the 21 Micron Emission Feature in Post-Asymptotic Giant Branch Stars
- Extended Red Emission in IC59 and IC63
- Are the Carriers of Diffuse Interstellar Bands and Extended Red Emission the same?
- Interstellar Grains -- The 75th Anniversary
- Graphene Oxide Nanoparticles in the Interstellar Medium
- On Silicon Carbide Grains as the Carrier of the 21 Micron Emission Feature in Post-Asymptotic Giant Branch Stars
- Extended Red Emission in the "Evil Eye" Galaxy (NGC4826)
- The red halos of SDSS low surface brightness disk galaxies
- Properties of dust and detection of Halpha emission in LDN 1780
- An Optical Spectrum of the Diffuse Galactic Light from BOSS and IRIS
- Nanodust in the Interstellar Medium in Comparison to the Solar System
- Spectroscopy of diffuse light in dust clouds. Scattered light and the solar neighbourhood radiation field
- Optical and UV surface brightness of translucent dark nebulae: Dust albedo, radiation field and fluorescence emission by H2
- Photoluminescence in amorphous MgSiO_3 silicate