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Charging of Individual Micron-Size Interstellar/Planetary Dust Grains by Secondary Electron EmissionsDust grains in various astrophysical environments are generally charged electrostatically by photoelectric emissions with UV/X-ray radiation, as well as by electron/ion impact. Knowledge of physical and optical properties of individual dust grains is required for understanding of the physical and dynamical processes in space environments and the role of dust in formation of stellar and planetary systems. In this paper, we discuss experimental results on dust charging by electron impact, where low energy electrons are scattered or stick to the dust grains, thereby charging the dust grains negatively, and at sufficiently high energies the incident electrons penetrate the grain leading to excitation and emission of electrons referred to as secondary electron emission (SEE). Currently, very limited experimental data are available for charging of individual micron-size dust grains, particularly by low energy electron impact. Available theoretical models based on the Sternglass equation (Sternglass, 1954) are applicable for neutral, planar, and bulk surfaces only. However, charging properties of individual micron-size dust grains are expected to be different from the values measured on bulk materials. Our recent experimental results on individual, positively charged, micron-size lunar dust grains levitated in an electrodynamic balance facility (at NASA-MSFC) indicate that the SEE by electron impact is a complex process. The electron impact may lead to charging or discharging of dust grains depending upon the grain size, surface potential, electron energy, electron flux, grain composition, and configuration (e.g. Abbas et al, 2010). Here we discuss the complex nature of SEE charging properties of individual micron-size lunar dust grains and silica microspheres.
Document ID
20120014534
Acquisition Source
Marshall Space Flight Center
Document Type
Abstract
Authors
Tankosic, D.
(Oak Ridge Associated Universities, Inc. United States)
Abbas, M. M.
(NASA Marshall Space Flight Center Huntsville, AL, United States)
Date Acquired
August 26, 2013
Publication Date
May 20, 2012
Subject Category
Lunar And Planetary Science And Exploration
Report/Patent Number
M12-1529
Report Number: M12-1529
Meeting Information
Meeting: 13th Workshop on the Physics of Dusty Plasm
Location: Waco, TX
Country: United States
Start Date: May 20, 2012
End Date: May 23, 2012
Distribution Limits
Public
Copyright
Public Use Permitted.
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