Research Laboratory of Electronics, Massachusetts Institute of Technology , Cambridge, Massachusetts 02139, United States.
ACS Nano. 2014 Nov 25;8(11):11474-82. doi: 10.1021/nn504594g. Epub 2014 Nov 13.
Here we demonstrate the design, fabrication, and characterization of ultrafast, surface-plasmon enhanced Au nanorod optical field emitter arrays. We present a quantitative study of electron emission from Au nanorod arrays fabricated by high-resolution electron-beam lithography and excited by 35 fs pulses of 800 nm light. We present accurate models for both the optical field enhancement of Au nanorods within high-density arrays, and electron emission from those nanorods. We have also studied the effects of surface plasmon damping induced by metallic interface layers at the substrate/nanorod interface on near-field enhancement and electron emission. We have identified the peak optical field at which the electron emission mechanism transitions from a 3-photon absorption mechanism to strong-field tunneling emission. Moreover, we have investigated the effects of nanorod array density on nanorod charge yield, including measurement of space-charge effects. The Au nanorod photocathodes presented in this work display 100-1000 times higher conversion efficiency relative to previously reported UV triggered emission from planar Au photocathodes. Consequently, the Au nanorod arrays triggered by ultrafast pulses of 800 nm light in this work may outperform equivalent UV-triggered Au photocathodes, while also offering nanostructuring of the electron pulse produced from such a cathode, which is of interest for X-ray free-electron laser (XFEL) development where nanostructured electron pulses may facilitate more efficient and brighter XFEL radiation.
我们展示了超快表面等离激元增强金纳米棒光场发射阵列的设计、制造和特性。我们对通过高分辨率电子束光刻制造的金纳米棒阵列进行了电子发射的定量研究,并通过 800nm 光的 35fs 脉冲进行了激发。我们提出了准确的模型,用于描述高密度金纳米棒阵列中的光学场增强以及这些纳米棒的电子发射。我们还研究了基底/纳米棒界面处金属界面层引起的表面等离激元阻尼对近场增强和电子发射的影响。我们已经确定了电子发射机制从三光子吸收机制转变为强场隧穿发射的峰值光场。此外,我们还研究了纳米棒阵列密度对纳米棒电荷产额的影响,包括对空间电荷效应的测量。与之前报道的平面金光电阴极的 UV 触发发射相比,本工作中提出的金纳米棒光电阴极的转换效率提高了 100-1000 倍。因此,在这项工作中,800nm 光超快脉冲触发的金纳米棒阵列可能会优于等效的 UV 触发金光电阴极,同时还提供了从这种阴极产生的电子脉冲的纳米结构化,这对于 X 射线自由电子激光 (XFEL) 的发展很感兴趣,因为纳米结构化的电子脉冲可能会促进更高效和更亮的 XFEL 辐射。