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Field-emission enhanced breakdown in oxygen microdischarges from direct-current to radio-frequencies

机译:现场排放从直流电频率到无线电频率的氧微电片中的击穿

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摘要

This paper reports on experimental studies of the breakdown mechanism in oxygen microdischarges generated in static and time-varying electric fields, up to radio-frequencies. Measurements were performed by using electrodes with round edges separated by a distance ranging between 2.5 mu m and 100 mu m, with the gas pressure from 7.5 Torr to 700 Torr. It is shown that the breakdown voltage does not obey standard scaling law for gaps of the order of a few microns for both direct current and alternating fields. A high electric field obtained in small gaps may enhance the secondary electron emission leading to the lowering of the breakdown voltage and departure from the standard scaling law. With increasing the gap size, the breakdown voltage increases since the contribution of field emission progressively reduces. Based on the breakdown voltage curves, the yields corresponding to the secondary electron production have been estimated. The threshold for field emission determined from our experimental data agree well with the value from the literature. Copyright (C) EPLA, 2018
机译:本文报道了静态和时变电场产生的氧微电片中氧气微探剂中击穿机制的实验研究报告,直至无线电频率。通过使用圆形边缘的电极进行测量,距离在2.5μm和100μm之间的距离,气体压力为7.5托至700托。结果表明,击穿电压不会遵守直流和交流场几微米的差距的标准缩放规律。在小间隙中获得的高电场可以增强电极发射,导致击穿电压的降低和偏离标准缩放法。随着间隙尺寸的增加,击穿电压增加,因为场发射的贡献逐渐减少。基于击穿电压曲线,估计了对应于二次电子产生的产量。从我们的实验数据确定的场发射的阈值与文献中的价值很好。版权所有(c)epla,2018

著录项

  • 来源
    《EPL 》 |2017年第2期| 共5页
  • 作者单位

    Comenius Univ Dept Expt Phys Mlynska Dolina F2 Bratislava 84248 Slovakia;

    Comenius Univ Dept Expt Phys Mlynska Dolina F2 Bratislava 84248 Slovakia;

    Comenius Univ Dept Expt Phys Mlynska Dolina F2 Bratislava 84248 Slovakia;

    Univ Belgrade Inst Phys Pregrevica 118 Zemun 11080 Serbia;

    Univ Belgrade Inst Phys Pregrevica 118 Zemun 11080 Serbia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理学 ;
  • 关键词

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