Han Panyang, Li Xinghui, Cai Jun, Feng Jinjun
National Key Laboratory of Science and Technology on Vacuum Electronics, Beijing Vacuum Electronics Research Institute, Beijing 100015, China.
Micromachines (Basel). 2023 Jan 30;14(2):346. doi: 10.3390/mi14020346.
Nanoscale vacuum channel triodes realize the vacuum-like transmission of electrons in the atmosphere because the transmission distance is less than the mean free path of electrons in air. This new hybrid device is the deep integration of vacuum electronics technology, micro-nano electronics technology, and optoelectronic technology. It has the advantages of both vacuum and solid-state devices and is considered to be the next generation of vacuum electronic devices. In this work, vertical nanoscale vacuum channel diodes and triodes with edge emission were fabricated using advanced micro-nano processing technology. The device materials were all based on the vacuum electronics material system. The field emission characteristics of the devices were investigated. The diode continued emitting at a bias voltage from 0 to 50 V without failure, and the current variation under different vacuum degrees was better than 2.1%. The field emission characteristics of the devices were evaluated over a wide pressure range of between 10 Pa and 10 Pa, and the results could explain the vacuum-like behavior of the devices when operating in air. The current variation of the triode is better than 6.1% at V = 8 V and V = 10 V.
纳米级真空通道三极管实现了电子在大气中的类真空传输,因为传输距离小于电子在空气中的平均自由程。这种新型混合器件是真空电子技术、微纳电子技术和光电子技术的深度集成。它兼具真空器件和固态器件的优点,被认为是下一代真空电子器件。在这项工作中,采用先进的微纳加工技术制备了具有边缘发射的垂直纳米级真空通道二极管和三极管。器件材料均基于真空电子材料体系。对器件的场发射特性进行了研究。二极管在0至50 V的偏置电压下持续发射而无故障,不同真空度下的电流变化优于2.1%。在10 Pa至10 Pa的宽压力范围内对器件的场发射特性进行了评估,结果可以解释器件在空气中工作时的类真空行为。三极管在V = 8 V和V = 10 V时的电流变化优于6.1%。