Green Mark E, Bas Derek A, Yao Hsin-Yu, Gengler Jamie J, Headrick Robert J, Back Tyson C, Urbas Augustine M, Pasquali Matteo, Kono Junichiro, Her Tsing-Hua
Department of Physics and Optical Science , UNC Charlotte , Charlotte , North Carolina 28223 , United States.
Materials and Manufacturing Directorate , Air Force Research Laboratory , Wright-Patterson Air Force Base , Ohio 45433 , United States.
Nano Lett. 2019 Jan 9;19(1):158-164. doi: 10.1021/acs.nanolett.8b03564. Epub 2018 Dec 17.
Ultrashort bunches of electrons, emitted from solid surfaces through excitation by ultrashort laser pulses, are an essential ingredient in advanced X-ray sources, and ultrafast electron diffraction and spectroscopy. Multiphoton photoemission using a noble metal as the photocathode material is typically used but more brightness is desired. Artificially structured metal photocathodes have been shown to enhance optical absorption via surface plasmon resonance but such an approach severely reduces the damage threshold in addition to requiring state-of-the-art facilities for photocathode fabrication. Here, we report ultrafast photoelectron emission from sidewalls of aligned single-wall carbon nanotubes. We utilized strong exciton resonances inherent in this prototypical one-dimensional material, and its excellent thermal conductivity and mechanical rigidity leading to a high damage threshold. We obtained unambiguous evidence for resonance-enhanced multiphoton photoemission processes with definite power-law behaviors. In addition, we observed strong polarization dependence and ultrashort photoelectron response time, both of which can be quantitatively explained by our model. These results firmly establish aligned single-wall carbon nanotube films as novel and promising ultrafast photocathode material.
通过超短激光脉冲激发从固体表面发射的超短电子束,是先进X射线源、超快电子衍射和光谱学的重要组成部分。通常使用以贵金属作为光阴极材料的多光子光发射,但人们希望获得更高的亮度。人工结构化金属光阴极已被证明可通过表面等离子体共振增强光吸收,但这种方法除了需要用于光阴极制造的先进设施外,还会严重降低损伤阈值。在此,我们报告了取向单壁碳纳米管侧壁的超快光电子发射。我们利用了这种典型一维材料中固有的强激子共振,以及其出色的热导率和机械刚性,从而实现了高损伤阈值。我们获得了具有明确幂律行为的共振增强多光子光发射过程的确切证据。此外,我们观察到了强烈的偏振依赖性和超短光电子响应时间,这两者都可以由我们的模型进行定量解释。这些结果牢固地确立了取向单壁碳纳米管薄膜作为新型且有前景的超快光阴极材料的地位。