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The Transition to Paschen’s Law for Microscale Gas Breakdown at Subatmospheric Pressure

机译:在大气压下发生微尺度气体分解的帕申定律过渡

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摘要

The decrease in electronic device size necessitates greater understanding of gas breakdown and electron emission at microscale to optimize performance. While traditional breakdown theory using Paschen’s law (PL), driven by Townsend avalanche, fails for gap distance d  15 μm, recent studies have derived analytic equations for breakdown voltage when field emission and Townsend avalanche drive breakdown. This study derives a new analytic equation that predicts breakdown voltage VB within 4% of the exact numerical results of a previously derived theory and new experimental results at subatmospheric pressure for gap distances from 1–25 μm. At atmospheric pressure, VB transitions to PL near the product of pressure and gap distance, pd, corresponding to the Paschen minimum; at lower pressures, the transition to PL occurs to the left of the minimum. We further show that the work function plays a major role in determining which side of the Paschen minimum VB transitions to PL as pressure approaches atmospheric pressure while field enhancement and the secondary emission coefficient play smaller roles. These results indicate that appropriate combinations of these parameters cause VB to transition to PL to the left of the Paschen minimum, which would yield an extended plateau similar to some microscale gas breakdown experimental observations.
机译:电子设备尺寸的减小需要更深入地了解气体击穿和电子发射,以优化性能。由汤森(Townsend)雪崩驱动的使用帕申定律(PL)的传统击穿理论因间隙距离d 15μm,最近的研究推导了场发射和Townsend雪崩驱动击穿时的击穿电压解析方程。这项研究得出了一个新的解析方程,该方程可预测击穿电压VB在先前得出的理论的精确数值结果的4%之内,以及在低于大气压的间隙距离为1-25μm时的新实验结果。在大气压下,VB在压力和气隙距离pd的乘积附近转变为PL,与Paschen最小值对应。在较低压力下,向PL的过渡发生在最小值的左侧。我们进一步表明,当压力接近大气压时,功函数在确定帕申最小VB的哪一侧过渡到PL的过程中起着主要作用,而场增强和二次发射系数起着较小的作用。这些结果表明,这些参数的适当组合会导致VB过渡到Paschen最小值左侧的PL,这将产生类似于某些微尺度气体分解实验观察结果的扩展平台。

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