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A reformulated general thermal-field emission equation

机译:重新制定的一般热场发射方程

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摘要

Theoretical models of thermal, field, and thermal-field emission of electrons generally require the evaluation of the Gamow, or tunneling, factor. A rapid means to do so is developed using shape factor methods for general potentials, but, in particular, for the image charge (or Schottky-Nordheim) barrier from which the Fowler-Nordheim (field emission) and Richardson-Laue-Dushman (thermal emission) equations are derived. The shape factor method provides greater accuracy than the elliptical integral functions that the electron emission equations conventionally rely on and eliminates the need to use them. The mild overprediction of the field emission current by the Fowler-Nordheim equation at very high fields is corrected. Undesired behaviors associated with prior versions of the general Thermal-Field equation in the thermal-field regime are eliminated by properly identifying the maximum of the current density integrand and accounting for its shape. The methodology to rapidly identify the current density maximum in general is demonstrated for various combinations of field, temperature, and work function, and the improvements demonstrated. The utility of the reformulated methodology for the simulation of electron beams and the ability to characterize cathode configurations of technological interest are discussed.
机译:电子的热,场和热场发射的理论模型通常需要评估Gamow或隧穿因子。快速发展的方法是使用形变因子方法来开发一般电位,但特别是针对图像电荷(或肖特基-诺德海姆)势垒,福勒-诺德海姆(场发射)和理查森-劳厄-杜什曼(热源)从此势垒发射)方程式。形状因子方法比电子发射方程式通常依赖的椭圆积分函数提供更高的精度,并且消除了使用它们的需要。 Fowler-Nordheim方程在非常高的磁场下对场发射电流的过高预测被纠正。通过正确识别电流密度被积物的最大值并考虑其形状,可以消除与常规热场方程在热场状态下的先前版本相关的不良行为。对于场,温度和功函数的各种组合,演示了通常可以快速识别最大电流密度的方法,并演示了改进方法。讨论了用于电子束模拟的重构方法的实用性和表征技术兴趣的阴极构型的能力。

著录项

  • 来源
    《Journal of Applied Physics》 |2019年第6期|065302.1-065302.13|共13页
  • 作者

    Jensen Kevin L.;

  • 作者单位

    Naval Res Lab, Washington, DC 20375 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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