Study on Low-Temperature Emission Performance of Scandate Cathode with Micro-Blade-Type Arrays
Abstract
:1. Introduction
2. Experiment
2.1. Fabrication of Micro-Blade-Type Arrays on Porous Tungsten Matrix Surface
2.2. Cathode Preparation
2.3. Characterization of Cathode Morphology and Performance Test
3. Results
3.1. Morphology of Porous Tungsten Micro-Blade-Type Arrays
3.2. Results of the Electron Emission Measurements
4. Discussion and Analysis
4.1. Formation of Micro-Blade-Type Arrays
4.2. Field Enhancement Effect Micro-Blade-Type Arrays
4.3. Emission Characteristics of Scandate Cathode with Micro-Blade-Type Arrays
4.4. Analysis of High Emission Characteristics of Scandate Cathode with Micro-Blade-Type Arrays
5. Conclusions
- An arrangement of micro-blade-type arrays was fabricated well by laser engraving technologies. The micro-blade-type arrays had a height of 20–40 µm and were separated with a spacing of 40 µm. Most of the pores in the tungsten sponge were preserved during the process, which is of importance to the prepared cathode. Simulation results using the Maxwell 2D software showed that the highest electric intensity at the micro-blades was enhanced by four times and reached 1.2 × 108 V/m.
- The prepared cathode exhibited excellent electron emission levels at low temperatures. According to an analysis of the characteristics of the prepared cathode and TEEM images of a scandate cathode, it was considered that the emission type of scandate cathodes is a kind of joint thermal-field emission, similar to a thermal Schottky cathode. A lower work function layer of Ba–Sc–O was formed and retained by heating the cathode, which was in favor of field emission. With the combined effect of heating in a certain range of temperatures and the high electric field intensity generated by the fabricated micro-blades, the electron emission of the prepared cathode was greatly improved.
- The semiconductor model was introduced to specifically analyze the influence of electric strength on electron emission. The calculated result indicates that emission density increased greatly with electric field enhancement. The analysis supports the experimental results, where the prepared scandate cathode with micro-blade-type arrays obtained excellent electron emission performance.
- With the excellent emission performance at relatively low temperature, the proposed cathode has a certain advantage in high-frequency and terahertz VED applications. On the other hand, the fabrication of micro-blade-type arrays may cause the problem of emission uniformity. Work concerning the evaluation and application of the cathode will be carried out in the next step of our research.
Author Contributions
Funding
Conflicts of Interest
References
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Slope | 800 °C | 750 °C | 700 °C | 650 °C | 600 °C | 550 °C |
---|---|---|---|---|---|---|
Slope at low field | 0.75 | 0.77 | 0.76 | 0.69 | 0.55 | 0.34 |
Slope at high field | 1.03 | 1.34 | 1.37 | 1.50 | 1.57 | 1.48 |
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Lu, Z.; Yin, S.; Zhang, Z.; Ren, F.; Lv, X. Study on Low-Temperature Emission Performance of Scandate Cathode with Micro-Blade-Type Arrays. Materials 2020, 13, 100. https://doi.org/10.3390/ma13010100
Lu Z, Yin S, Zhang Z, Ren F, Lv X. Study on Low-Temperature Emission Performance of Scandate Cathode with Micro-Blade-Type Arrays. Materials. 2020; 13(1):100. https://doi.org/10.3390/ma13010100
Chicago/Turabian StyleLu, Zhipeng, Shengyi Yin, Zhaochuan Zhang, Feng Ren, and Xinping Lv. 2020. "Study on Low-Temperature Emission Performance of Scandate Cathode with Micro-Blade-Type Arrays" Materials 13, no. 1: 100. https://doi.org/10.3390/ma13010100
APA StyleLu, Z., Yin, S., Zhang, Z., Ren, F., & Lv, X. (2020). Study on Low-Temperature Emission Performance of Scandate Cathode with Micro-Blade-Type Arrays. Materials, 13(1), 100. https://doi.org/10.3390/ma13010100