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Laboratory Studies of Charging Properties of Dust Grains in Astrophysical/Planetary Environments

机译:天体/行星环境中尘粒带电特性的室内研究

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摘要

Dust 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 focus on charging of individual micron/submicron dust grains by processes that include: (a) UV photoelectric emissions involving incident photon energies higher than the work function of the material and b) 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). It is well accepted that the charging properties of individual micron/submicron size dust grains are expected to be substantially different from the bulk materials. However, no viable models for calculation of the charging properties of individual micron size dust grains are available at the present time. Therefore, the photoelectric yields, and secondary electron emission yields of micron-size dust grains have to be obtained by experimental methods. Currently, very limited experimental data are available for charging of individual micron-size dust grains. Our experimental results, obtained on individual, micron-size dust grains levitated in an electrodynamic balance facility (at NASA-MSFC), show that: (1) The measured photoelectric yields are substantially higher than the bulk values given in the literature and indicate a particle size dependence with larger particles having order-of-magnitude higher values than for submicron-size grains; (2) dust charging by low energy electron impact is a complex process. Also, our measurements indicate that 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). Laboratory measurements on charging of analogs of the interstellar dust as well as Apollo 11 dust grains conducted at the NASA-MSFC Dusty Plasma Lab. are presented here
机译:在各种天体环境中的尘粒通常通过紫外线/ X射线辐射的光电发射以及电子/离子撞击而带静电。需要了解单个尘埃颗粒的物理和光学特性,以了解空间环境中的物理和动力学过程以及尘埃在恒星和行星系统形成中的作用。在本文中,我们着重于通过以下过程对单个微米/亚微米粉尘颗粒进行充电:(a)涉及入射光子能量高于材料功函数的紫外线光电发射,以及b)电子轰击,其中低能电子被散射或尘埃会粘附在尘埃颗粒上,从而使尘埃颗粒带负电,并且在足够高的能量下,入射电子会穿透尘埃颗粒,从而导致电子的激发和发射,称为二次电子发射(SEE)。公认的是,单个微米/亚微米尺寸的尘粒的带电性能预计将与散装材料显着不同。但是,目前尚无可行的模型来计算单个微米级灰尘颗粒的带电特性。因此,必须通过实验方法获得微米级尘埃颗粒的光电产率和二次电子发射产率。当前,仅有非常有限的实验数据可用于单个微米级粉尘颗粒的充电。我们的实验结果是通过在电动平衡装置(在NASA-MSFC)中悬浮的单个微米级灰尘颗粒获得的,结果表明:(1)测得的光电收率大大高于文献中给出的总体值,表明与较大颗粒相比,其颗粒大小相关性,其数量级值高于亚微米级颗粒; (2)低能电子的冲击使粉尘带电是一个复杂的过程。同样,我们的测量结果表明,电子冲击可能会导致尘粒充电或放电,具体取决于晶粒尺寸,表面电势,电子能量,电子通量,晶粒组成和构型(例如Abbas等,2010)。在NASA-MSFC Dusty等离子实验室对星际尘埃和Apollo 11尘埃颗粒的类似物进行实验室测量。在这里展示

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    Tankosic, D.; Abbas, M. M.;

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  • 年度 2012
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