论文标题
电容耦合的霓虹氧等离子体中的电子功率吸收:实验和计算结果的比较
Electron power absorption in capacitively coupled neon-oxygen plasmas: a comparison of experimental and computational results
论文作者
论文摘要
相位分辨的光发射光谱(PRO)测量与1D3V粒子中/蒙特卡洛碰撞(PIC/MCC)模拟相结合,用于研究霓虹灯和氧化物气体混合物中电容性耦合等离子体(CCP)中电子功率吸收和激发/电离动力学。该研究是针对几何对称的CCP反应器进行的,间隙长度为2.5 cm,驱动频率为10〜MHz,峰值峰值电压为350V。气体混合物的压力在15 pa和500 pA之间变化,而霓虹灯/氧气浓度在10%和90%之间调节。对于所有排放条件,电子碰撞激发率从NE接地状态到NE $ \ rm {2p^53p_0} $状态通过PROES测量并从PIC/MCC模拟获得的状态显示出良好的定性协议。根据排放/激发模式,确定了多个操作制度。在高压和高o $ _2 $浓度下,在块状边界处的局部明亮发射特征是由局部最大值引起的。发现双极性和欧姆电子功率吸收的相对贡献与排放参数有很大变化:高压下高碰撞和低压电负强度的高碰撞均增强了欧姆功率的吸收。在本研究涵盖的广泛参数方案中,发现了预测测量值准确地表示电离动力学,即放电操作模式。这项工作还代表了针对霓虹氧CCP开发的排放模型的成功实验验证。
Phase Resolved Optical Emission Spectroscopy (PROES) measurements combined with 1d3v Particle-in-Cell/Monte Carlo Collisions (PIC/MCC) simulations are used to study the electron power absorption and excitation/ionization dynamics in capacitively coupled plasmas (CCPs) in mixtures of neon and oxygen gases. The study is performed for a geometrically symmetric CCP reactor with a gap length of 2.5 cm at a driving frequency of 10~MHz and a peak-to-peak voltage of 350 V. The pressure of the gas mixture is varied between 15 Pa and 500 Pa, while the neon/oxygen concentration is tuned between 10% and 90%. For all discharge conditions, the spatio-temporal distribution of the electron-impact excitation rate from the Ne ground state into the Ne $\rm{2p^53p_0}$ state measured by PROES and obtained from PIC/MCC simulations show good qualitative agreement. Based on the emission/excitation patterns, multiple operation regimes are identified. Localized bright emission features at the bulk boundaries, caused by local maxima in the electronegativity are found at high pressures and high O$_2$ concentrations. The relative contributions of the ambipolar and the Ohmic electron power absorption are found to vary strongly with the discharge parameters: the Ohmic power absorption is enhanced by both the high collisionality at high pressures and the high electronegativity at low pressures. In the wide parameter regime covered in this study, the PROES measurements are found to accurately represent the ionization dynamics, i.e., the discharge operation mode. This work represents also a successful experimental validation of the discharge model developed for neon-oxygen CCPs.