| Literature DB >> 31842262 |
Yifan Zu1, Xuesong Yuan1, Xiaotao Xu1, Matthew T Cole2, Yu Zhang3, Hailong Li1, Yong Yin1, Bin Wang1, Yang Yan1.
Abstract
Carbon nanotube (CNT) cold cathodes are proving to be compelling candidates for miniaturized terahertz (THz) vacuum electronic devices (VEDs) owning to their superior field-emission (FE) characteristics. Here, we report on the development of a multi-sheet beam CNT cold cathode electron optical system with concurrently high beam current and high current density. The microscopic FE characteristics of the CNT film emitter is captured through the development of an empirically derived macroscopic simulation model which is used to provide representative emission performance. Through parametrically optimized macroscale simulations, a five-sheet-beam triode electron gun has been designed, and has been shown to emit up to 95 mA at 3.2 kV. Through careful engineering of the electron gun geometric parameters, a low-voltage compact THz radiation source operating in high-order TM 5 , 1 mode is investigated to improve output power and suppress mode competition. Particle in cell (PIC) simulations show the average output power is 33 W at 0.1 THz, and the beam-wave interaction efficiency is approximately 10%.Entities:
Keywords: carbon nanotubes; cold cathode; field emission; high-order mode; multi-sheet beam; nanotechnology; terahertz; vacuum electronic devices
Year: 2019 PMID: 31842262 PMCID: PMC6955727 DOI: 10.3390/nano9121768
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1Typical emission characteristics of the carbon nanotube (CNT) emitters. (a) The field-emission (FE) properties of the CNT film emitter was determined using a simple diode configuration. Insets from Reference [32]: scanning electron microscope (SEM) images of CNTs grown on Ni80Cr20 alloy wire; (b) fitting, simulation and experimental emission current as a function of applied electric field. Inset: the corresponding Fowler–Nordheim (FN) plots presented in terms of ln(J/) versus 1/E.
Figure 2The grid triode system of a single CNT film emitter FE. (a) FE current density as a function of the effective length of the CNT film emitter. Inset: The surface electric field distribution of the emitter and cathode substrate when L = 3 mm; (b) FE current density as a function of the distance between the CNT film emitter and the anode. Inset: beam trajectories.
Figure 3The five-sheet-beam electron optical system based on the CNT film emitter. (a) Simulated beam trajectories; (b) the FE current as a function of L and G.
Figure 4The five-sheet-beam terahertz (THz) radiation source based on CNT cold cathode. (a) Structure of the interaction circuit; (b) electric field arrows distribution of mode; (c) -field contours at z = 0 plane of mode.
Structural parameters.
| Parameters | Values and Units |
|---|---|
| Interaction gap width | 1.74 mm |
| Interaction gap height | 4.00 mm |
| Interaction gap length | 0.15 mm |
| Period length | 0.32 mm |
| Electron beam tunnel width | 0.18 mm |
| Electron beam tunnel height | 3.20 mm |
| Distance between adjacent electron beam tunnels | 1.74 mm |
| Operating frequency | 100.56 GHz |
| Operating voltage | 3.2 kV |
| Operating current | 95 mA |
| Axial focusing magnetic field | 0.60 T |
Figure 5Particle in cell (PIC) results depicting gun operation following beam–wave interaction stability with operation voltage 3.2 kV, showing (a) notable electron bunch occurring; (b) signal power amplitude at the output port; (c) output signal spectrum showing high mode purity at 100.56 GHz.