Wang Feipeng, He Jie, Zhao Qi, Zhang Zhicheng, Zhang Xiao
State Key Laboratory of Power Transmission Equipment Technology, School of Electrical Engineering, Chongqing University, Chongqing 400044, China.
State Grid Tianjin Electric Power Research Institute, Tianjin 300384, China.
ACS Omega. 2024 Dec 5;9(50):49411-49421. doi: 10.1021/acsomega.4c06844. eCollection 2024 Dec 17.
Multipactor, a vacuum discharge under microwave conditions triggered by secondary electron emission (SEE), plays a critical role in managing the power level of microwave devices. In this study, we developed a fluorocarbon-titanium composite film on aluminum by cosputtering polytetrafluoroethylene (PTFE) and titanium via a controlled temperature and sputtering power ratio (RF power for PTFE to DC power for Ti) to suppress the SEE of Al. The evolution of microtopography and chemical composition of the composite film was evaluated. An increasing power ratio varying from 0.5 to 3.0 is found to change the film surface from scattered island-like bumps to a prominent peak-valley pattern and eventually to a smooth surface with few flat swellings. Elemental analysis revealed that the fluorine-to-carbon (F/C) mole ratio in samples was more significantly influenced by the sputtering power ratio than by the substrate temperature. The SEE yield indicates that the peak-valley pattern prepared by a power ratio of 2 leads to the maximum of the SEE yield curve reducing steeply from 2.99 to 1.23, which is attributed not only to the roughed pattern but also to the high F/C mole ratio owing to the higher capacity of electron trapping by the fluorine atoms.
多次反射放电是在二次电子发射(SEE)触发下的微波条件下的真空放电,在管理微波器件的功率水平方面起着关键作用。在本研究中,我们通过在可控温度和溅射功率比(聚四氟乙烯的射频功率与钛的直流功率之比)下共溅射聚四氟乙烯(PTFE)和钛,在铝上制备了一种碳氟 - 钛复合膜,以抑制铝的二次电子发射。评估了复合膜微观形貌和化学成分的演变。发现功率比从0.5增加到3.0会使膜表面从分散的岛状凸起变为明显的峰谷图案,最终变为几乎没有平坦隆起的光滑表面。元素分析表明,样品中的氟碳(F/C)摩尔比受溅射功率比的影响比受衬底温度的影响更大。二次电子发射产率表明,功率比为2制备的峰谷图案导致二次电子发射产率曲线的最大值从2.99急剧降至1.23,这不仅归因于粗糙的图案,还归因于由于氟原子捕获电子的能力较高而导致的高F/C摩尔比。