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通过等离子体的空间电荷限制热电子电流的替代模型。

Alternative model of space-charge-limited thermionic current flow through a plasma.

机构信息

Lawrence Livermore National Laboratory, Livermore, California 94551, USA.

出版信息

Phys Rev E. 2018 Apr;97(4-1):043207. doi: 10.1103/PhysRevE.97.043207.

DOI:10.1103/PhysRevE.97.043207
PMID:29758652
Abstract

It is widely assumed that thermionic current flow through a plasma is limited by a "space-charge-limited" (SCL) cathode sheath that consumes the hot cathode's negative bias and accelerates upstream ions into the cathode. Here, we formulate a fundamentally different current-limited mode. In the "inverse" mode, the potentials of both electrodes are above the plasma potential, so that the plasma ions are confined. The bias is consumed by the anode sheath. There is no potential gradient in the neutral plasma region from resistivity or presheath. The inverse cathode sheath pulls some thermoelectrons back to the cathode, thereby limiting the circuit current. Thermoelectrons entering the zero-field plasma region that undergo collisions may also be sent back to the cathode, further attenuating the circuit current. In planar geometry, the plasma density is shown to vary linearly across the electrode gap. A continuum kinetic planar plasma diode simulation model is set up to compare the properties of current modes with classical, conventional SCL, and inverse cathode sheaths. SCL modes can exist only if charge-exchange collisions are turned off in the potential well of the virtual cathode to prevent ion trapping. With the collisions, the current-limited equilibrium must be inverse. Inverse operating modes should therefore be present or possible in many plasma devices that rely on hot cathodes. Evidence from past experiments is discussed. The inverse mode may offer opportunities to minimize sputtering and power consumption that were not previously explored due to the common assumption of SCL sheaths.

摘要

人们普遍认为,通过等离子体的热电子电流受到“空间电荷限制”(SCL)阴极鞘的限制,该阴极鞘消耗热阴极的负偏压并将上游离子加速进入阴极。在这里,我们提出了一种根本不同的电流限制模式。在“反向”模式下,两个电极的电位都高于等离子体电位,因此等离子体离子被限制。偏压由阳极鞘消耗。从电阻率或预鞘来看,中性等离子体区域中没有电位梯度。反向阴极鞘将一些热电子拉回阴极,从而限制了电路电流。进入零场等离子体区域并发生碰撞的热电子也可能被送回阴极,进一步衰减电路电流。在平面几何中,等离子体密度沿电极间隙线性变化。建立了连续体动力学平面等离子体二极管模拟模型,以比较电流模式与经典、传统 SCL 和反向阴极鞘的特性。只有在虚拟阴极的势阱中关闭电荷交换碰撞以防止离子捕获的情况下,才能存在 SCL 模式。有了这些碰撞,电流限制平衡必须是反向的。因此,在许多依赖热阴极的等离子体设备中,应该存在或可能存在反向工作模式。讨论了过去实验的证据。反向模式可能为最小化溅射和功耗提供机会,由于对 SCL 鞘的普遍假设,这些机会以前没有被探索过。

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