论文标题

控制热发射中Miram曲线膝盖形状的物理因素

Physical factors governing the shape of the Miram curve knee in thermionic emission

论文作者

Chen, Dongzheng, Jacobs, Ryan, Morgan, Dane, Booske, John

论文摘要

在热电子发射中的电流密度与温度与温度(J-T)(MIRAM)曲线中,实验测量表明,指数区域和饱和发射区之间存在平稳的跃迁,有时将其称为“滚动”或“ Miram Curve膝盖”。 MIRAM曲线膝盖的形状是热真空阴极的重要值。具体而言,通常首选具有平坦饱和发射电流的低温下具有锋利的Miram曲线膝盖的阴极。我们先前关于对非均匀热发射的建模的工作表明,空间电荷效应和斑块场效应是影响MIRAM曲线膝盖形状的关键物理部分。这项工作提供了对连接这些物理效应的物理因素及其对膝盖形状的相对影响的完整理解,包括光滑度,温度和饱和发射电流密度的平坦度。为了进行分析,我们使用定期,相等的条纹条纹(“斑马交叉”)工作功能分布作为模型系统,并说明空间电荷和斑块场效应如何限制Miram曲线膝盖附近的发射电流密度。结果表明,有三个主要的物理参数会显着影响MIRAM曲线的形状。这种物理知识将斑块大小,工作函数值,阳极 - 阴极电压和阳极 - 阴极间隙距离连接到Miram曲线的形状,从而提供了新的理解和指南,以设计用于真空电子设备(VEDS)中电子源用作电子源的设计指南。

In a current density versus temperature (J-T) (Miram) curve in thermionic electron emission, experimental measurements demonstrate there is a smooth transition between the exponential region and the saturated emission regions, which is sometimes referred to as the "roll-off" or "Miram curve knee". The shape of the Miram curve knee is an important figure of merit for thermionic vacuum cathodes. Specifically, cathodes with a sharp Miram curve knee at low temperature with a flat saturated emission current are typically preferred. Our previous work on modeling nonuniform thermionic emission revealed that the space charge effect and patch field effect are key pieces of physics which impact the shape of the Miram curve knee. This work provides a more complete understanding of the physical factors connecting these physical effects and their relative impact on the shape of the knee, including the smoothness, the temperature, and the flatness of the saturated emission current density. For our analyses, we use a periodic, equal-width striped ("zebra crossing") work function distribution as a model system and illustrate how the space charge and patch field effects restrict the emission current density near the Miram curve knee. The results indicate there are three main physical parameters which significantly impact the shape of the Miram curve. Such physical knowledge directly connects the patch size, work function values, anode-cathode voltage, and anode-cathode gap distance to the shape of the Miram curve, providing new understanding and a guide to the design of thermionic cathodes used as electron sources in vacuum electronic devices (VEDs).

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