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Thermal-field and photoemission from meso-and micro-scale features: Effects of screening and roughness on characterization and simulation

机译:来自Meso-and Micro-Scale特征的热场和光曝光:筛选和粗糙度对表征和仿真的影响

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摘要

A methodology of modeling nonplanar surfaces, in which the microscale features of the emission sites can be orders of magnitude smaller than the mesoscale features defining the active emission area, has been developed and applied to both ordered arrays of identical emitters and random variations characteristic of a roughened surface. The methodology combines a general thermal-field-photoemission model for electron emission, a point charge model for the evaluation of field enhancement factors and surface geometry, and a Ballistic-Impulse model to account for the trajectories of electrons close to the cathode surface. How microscale and mesoscale features can both undermine the estimation of thermal-field emission parameters, such as characteristic field enhancement and total current predictions, as well as give rise to changes in the distribution of transverse velocity components used to estimate beam quality features such as emittance that are important to photocathodes, is quantified. The methodology is designed to enable both the proper characterization of emitters based on experimental current-voltage data and the development of a unit cell model of emission regions that will ease the emission model demands in beam optics codes.
机译:模拟非平面表面的方法,其中发射位点的微观特征可以是小于定义有源发射区域的Mescle特征的数量级,已经开发并应用于相同发射器的有序阵列和A的随机变化特性粗糙的表面。该方法结合了一种电子发射的一般热场 - 光曝光模型,用于评估现场增强因子和表面几何形状的点电荷模型,以及弹性脉冲模型,以解释靠近阴极表面的电子轨迹。微尺度和Messcale特征如何破坏热场发射参数的估计,例如特征场增强和总电流预测,以及导致用于估计诸如最幂的光束质量特征的横向速度分配的变化对光电阴极很重要,量化。该方法旨在根据实验电流 - 电压数据和发射区域的单位电池模型的开发来实现发射器的适当表征,这将在光束光学码中缓解发射模型需求。

著录项

  • 来源
    《Journal of Applied Physics》 |2019年第23期|234303.1-234303.25|共25页
  • 作者单位

    Naval Res Lab Washington DC 20375 USA;

    Naval Res Lab Washington DC 20375 USA;

    Arizona State Univ Dept Phys Tempe AZ 85287 USA;

    US Air Force Directed Energy Directorate Res Lab Albuquerque NM 87117 USA;

    US Air Force Directed Energy Directorate Res Lab Albuquerque NM 87117 USA;

    Los Alamos Natl Lab Los Alamos NM 87545 USA;

    Leidos Billerica MA 01821 USA;

    Leidos Billerica MA 01821 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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