Nanomaterials and Devices Lab, Mechanical and Materials Engineering Department, Florida International University, Miami, FL 33174, USA.
Nanotechnology. 2010 Apr 9;21(14):145206. doi: 10.1088/0957-4484/21/14/145206. Epub 2010 Mar 16.
The present work describes a comprehensive design and scalable micro-fabrication technique for the production of novel 3D cathodes, consisting of chemical-vapor-deposition-grown high-density multi-wall carbon nanotubes along the walls of alumina microchannels. Under high DC and AC electric fields, the 3D cathodes displayed significantly high and moderately stable emission current of approximately 5.25 and approximately 14 mA, respectively. The inherent advantages of the 3D microchannel geometry for cold cathodes are higher emitter area, less ion bombardment and robustness under high voltage conditions. The 3D cathodes are envisioned to offer an entirely new class of miniature electron sources for high current vacuum microelectronics.
本工作描述了一种用于制造新型 3D 阴极的综合设计和可扩展的微制造技术,该阴极由沿氧化铝微通道壁生长的化学气相沉积高密度多壁碳纳米管组成。在高直流和交流电场下,3D 阴极分别显示出约 5.25 和约 14 mA 的显著高且适度稳定的发射电流。3D 微通道几何形状对于冷阴极的固有优势在于更高的发射极面积、更少的离子轰击以及在高压条件下的稳健性。3D 阴极有望为高电流真空微电子学提供全新类别的微型电子源。