材料科学
三极管
碳纳米管
场电子发射
电流密度
共发射极
阴极射线
光电子学
阴极
二极管
阴极发光
电子
透射电子显微镜
亮度
电子枪
梁(结构)
光学
扫描电子显微镜
电子束诱导沉积
纳米技术
功率密度
电子束光刻
电场
电子显微镜
光束发散
电子束感应电流
扫描透射电子显微镜
阳极
电子束处理
电子密度
作者
Ravindra Patil,Aniket Karande,Kyu Chang Park
摘要
This study explores the influence of island diameter, shape, and emitter density on the performance of vertically aligned carbon nanotube (VACNT) cold cathodes for high-resolution electron microscopy applications. VACNT arrays with varying island diameters (small, medium, and large) and shapes (hexagonal and square) were fabricated to evaluate their impact on electron field emission. The effect of increasing emitter density within a fixed area was also analyzed. Smaller island diameters produced stronger localized electric fields, enhancing current density, while hexagonal shapes provided better beam focusing with reduced divergence. Increased emitter density improved total current output and emission stability. Optimized electron beam emission currents of 650 and 120 μA were achieved for diode and triode structures, respectively, using a hexagonal design with 19 emitters and a 23 μm diameter. The optimized emitters demonstrated exceptional performance, with a high current density of 1.2 × 106 A/m2 and a beam brightness of 1.8 × 108 A/m2 sr V. Additionally, the emitters exhibited a minimal beam divergence angle of 1.02°, ensuring precision and focus on electron beam applications. These results highlight the potential of the developed electron beam system for advanced applications requiring high-intensity, stable, and precise electron sources. These findings underscore the importance of optimizing geometric parameters to enhance electron beam performance, advancing VACNT-based electron sources for microscopy and other precision technologies.
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