Emission of charged particles from laser-induced germanium ecton, vacuum spark, and vacuum arc

V. Porshyn
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Abstract

The highly resolved temporal evolution of laser-induced micro-explosions on a germanium surface is studied in a triode configuration for various gate charge levels and cathode currents. Electron emission from individual spots is directly imaged with a luminescence screen, showing that the opening angle of the source is about 30$^\circ$. Electron bunches of several nanocoulombs per pulse in a time interval of about 150 ns are directly extracted to the anode without vacuum breakdown in the cathodic gap. When breakdown occurs, a remarkable change in the arc behavior of a threshold gap potential of around 1 kV is observed, which hints at two different evaporation mechanisms that depend on the cathodic fall of an individual spot. Therefore, for voltages well above the threshold, a fast gate discharge is observed within the first 100-200 ns, followed by fundamental plasma oscillations and an electron emission of several $\mu$C per pulse from the plasma boundary. Additionally, highly efficient emission of germanium ion clusters occurs, evidencing a stable two-fold electron multiplication in the plasma, with a charge of several $\mu$C per pulse below the threshold.
激光诱导锗外介子、真空火花和真空电弧的带电粒子发射
在三极管结构下,研究了不同栅极电荷水平和阴极电流下锗表面激光诱发微爆炸的高分辨时间演化。用发光屏对单个点的电子发射进行了直接成像,显示出光源的打开角度约为30$^\circ$。在约150ns的时间间隔内,每脉冲数纳库仑的电子束被直接提取到阳极,而阴极间隙中没有真空击穿。当击穿发生时,观察到大约1 kV的阈值间隙电位的电弧行为发生显著变化,这暗示了两种不同的蒸发机制,这取决于单个点的阴极下降。因此,对于远高于阈值的电压,在前100-200 ns内观察到快速栅极放电,随后是基本等离子体振荡和从等离子体边界每脉冲数μ C的电子发射。此外,锗离子团簇的高效发射发生,证明了等离子体中稳定的两倍电子倍增,每个脉冲的电荷低于阈值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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