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Non-invasive VHF monitoring of low-temperature atmospheric pressure plasma

机译:低温大气压等离子体的无创VHF监测

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A real-time VHF swept frequency (20-300 MHz) reflectometry measurement for radio-frequency capacitive-coupled atmospheric pressure plasmas is described. The measurement is scalar, non-invasive and deployed on the main power line of the plasma chamber. The purpose of this VHF signal injection is to remotely interrogate in real-time the frequency reflection properties of plasma. The information obtained is used for remote monitoring of high-value atmospheric plasma processing. Measurements are performed under varying gas feed (helium mixed with 0-2% oxygen) and power conditions (0-40 W) on two contrasting reactors. The first is a classical parallel-plate chamber driven at 16 MHz with well-defined electrical grounding but limited optical access and the second is a cross-field plasma jet driven at 13.56 MHz with open optical access but with poor electrical shielding of the driven electrode. The electrical measurements are modelled using a lumped element electrical circuit to provide an estimate of power dissipated in the plasma as a function of gas and applied power. The performances of both reactors are evaluated against each other. The scalar measurements reveal that 0.1% oxygen admixture in helium plasma can be detected. The equivalent electrical model indicates that the current density between the parallel-plate reactor is of the order of 8-20 mA cm~(-2). This value is in accord with 0.03 A cm~(-2) values reported by Park et al (2001 J. Appl. Phys. 89 20-8). The current density of the cross-field plasma jet electrodes is found to be 20 times higher. When the cross-field plasma jet unshielded electrode area is factored into the current density estimation, the resultant current density agrees with the parallel-plate reactor. This indicates that the unshielded reactor radiates electromagnetic energy into free space and so acts as a plasma antenna.
机译:描述了用于射频电容耦合大气压等离子体的实时VHF扫频(20-300 MHz)反射测量。测量是标量的,非侵入性的,并且部署在等离子腔室的主电源线上。这种VHF信号注入的目的是实时远程查询等离子体的频率反射特性。获得的信息用于远程监测高价值的大气等离子体处理。在两个对比反应器上,在不同的气体进料(氦气与0-2%的氧气混合)和功率条件(0-40 W)下进行测量。第一个是在16 MHz下驱动的经典平行板腔室,具有明确的电气接地,但光学通道有限,第二个是在13.56 MHz下驱动的交叉场等离子体射流,具有开放的光学通道,但对驱动电极的电屏蔽性能较差。使用集总元件电路对电测量进行建模,以根据气体和所施加的功率来估计在等离子体中耗散的功率。两个反应器的性能相互评估。标量测量表明,可以检测到氦等离子体中的0.1%氧气掺混物。等效电模型表明,平行板电抗器之间的电流密度约为8-20 mA cm〜(-2)。该值与Park等人(2001 J.Appl.Phys.89 20-8)报道的0.03A cm·(-2)值一致。发现交叉场等离子体喷射电极的电流密度高20倍。当将跨场等离子体射流的非屏蔽电极面积纳入电流密度估算时,所得电流密度与平行板电抗器一致。这表明未屏蔽的电抗器将电磁能辐射到自由空间中,因此充当等离子天线。

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