论文标题

平面纳米真空发射器的电子排放制度

Electron Emission Regimes of Planar Nano Vacuum Emitters

论文作者

Turchetti, Marco, Yang, Yujia, Bionta, Mina R., Nardi, Alberto, Daniel, Luca, Berggren, Karl K., Keathley, Phillip D.

论文摘要

纳米制造的最新进展使使用纳米级自由空间间隙创建了真空电子设备。这些纳米电机设备有望通过自由空间进行冷场发射和运输的好处,例如高非线性和对温度和电离辐射的相对不敏感性,同时大大降低了足迹,增加了操作带宽并降低了每个设备的功耗。此外,可以轻松地将平面真空纳米电子学与典型的微观和纳米级半导体电子相似。但是,从这些设备的不同电子发射机制之间的相互作用尚不清楚,并且其他人已经注意到了与纯Fowler-Nordheim发射的不一致。在这项工作中,我们系统地研究了平面真空纳米二极管的电流 - 电压特性,它们在发射器和收集器之间的曲率半径和自由空间间隙很少。通过研究由两种不同材料和各种环境条件(例如温度和大气压)制造的几乎相同二极管的电流 - 电压特性,我们能够清楚地隔离单个设备中的三个不同的排放机制:Schottky,Fowler-Nordheim和饱和度。我们的工作将实现真空纳米电子学的鲁棒和准确的建模,这对于需要在极端条件下运行的高速和低功率电子的未来应用至关重要。

Recent advancements in nanofabrication have enabled the creation of vacuum electronic devices with nanoscale free space gaps. These nanoelectronic devices promise the benefits of cold-field emission and transport through free-space, such as high nonlinearity and relative insensitivity to temperature and ionizing radiation, all the while drastically reducing the footprint, increasing the operating bandwidth and reducing the power consumption of each device. Furthermore, planarized vacuum nanoelectronics could easily be integrated at scale similar to typical micro and nanoscale semiconductor electronics. However, the interplay between different electron emission mechanisms from these devices are not well understood, and inconsistencies with pure Fowler-Nordheim emission have been noted by others. In this work, we systematically study the current-voltage characteristics of planar vacuum nano-diodes having few-nanometer radii of curvature and free-space gaps between the emitter and collector. By investigating the current-voltage characteristics of nearly identical diodes fabricated from two different materials and under various environmental conditions, such as temperature and atmospheric pressure, we were able to clearly isolate three distinct emission regimes within a single device: Schottky, Fowler-Nordheim, and saturation. Our work will enable robust and accurate modeling of vacuum nanoelectronics which will be critical for future applications requiring high-speed and low-power electronics capable of operation in extreme conditions.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源