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Simulating multi-scale gated field emitters-A hybrid approach

机译:模拟多尺度门控区域发射器 - 混合方法

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Multi-stage cathodes are promising candidates for field emission due to the multiplicative effect in local field predicted by the Schottky conjecture and its recently corrected counterpart [Biswas, J. Vac. Sci. Technol. B 38, 023208 (2020)]. Due to the large variation in length scales even in a 2-stage compound structure consisting of a macroscopic base and a microscopic protrusion, the simulation methodology of a gated field emitting compound diode needs to be revisited. As part of this strategy, the authors investigate the variation of local field on the surface of a compound emitter near its apex and find that the generalized cosine law continues to hold locally near the tip of a multi-scale gated cathode. This is used to emit electrons with appropriate distributions in position and velocity components with a knowledge of only the electric field at the apex. The distributions are consistent with contemporary free-electron field emission model and follow from the joint distribution of launch angle, total energy, and normal energy. For a compound geometry with local field enhancement by a factor of around 1000, a hybrid model is used where the vacuum field calculated using COMSOL is imported into the Particle-In-Cell code PASUPAT, where the emission module is implemented. Space charge effects are incorporated in a multi-scale adaptation of PASUPAT using a truncated geometry with "open electrostatic boundary" condition. The space charge field, combined with the vacuum field, is used for particle-emission and tracking.
机译:由于肖特基猜想及其最近修正的对应物[Biswas,J.Vac.Sci.Technol.B 38023208(2020)]预测的局部场中的乘法效应,多级阴极是很有希望的场发射候选材料。由于即使在由宏观基底和微观突出物组成的两级复合结构中,长度尺度也存在很大的变化,因此需要重新研究栅控场发射复合二极管的模拟方法。作为该策略的一部分,作者研究了复合发射极顶部附近表面局部场的变化,发现在多尺度选通阴极尖端附近,广义余弦定律仍然局部适用。这用于发射位置和速度分量具有适当分布的电子,只需知道顶点的电场。这些分布符合当代自由电子场发射模型,并遵循发射角、总能量和法向能量的联合分布。对于局部场增强系数约为1000的复合几何体,使用混合模型,其中使用COMSOL计算的真空场被导入到实现发射模块的粒子单元代码PASUPAT中。利用带有“开放静电边界”条件的截断几何体,将空间电荷效应纳入PASUPAT的多尺度自适应中。空间电荷场与真空场相结合,用于粒子发射和跟踪。

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