†Max Planck Institute for Solid State Research, Heisenbergstr. 1, 70569 Stuttgart, Germany.
‡Institute of Physics and Center of Interface Science, Carl von Ossietzky University, 26129 Oldenburg, Germany.
ACS Nano. 2015 Jul 28;9(7):7641-8. doi: 10.1021/acsnano.5b03024. Epub 2015 Jul 1.
We investigate the optical modes in three-dimensional single-crystalline gold tapers by means of electron energy-loss spectroscopy. At the very proximity to the apex, a broad-band excitation at all photon energies from 0.75 to 2 eV, which is the onset for interband transitions, is detected. At large distances from the apex, though, we observe distinct resonances with energy dispersions roughly proportional to the inverse local radius. The nature of these phenomena is unraveled by finite difference time-domain simulations of the taper and an analytical treatment of the energy loss in fibers. Our calculations and the perfect agreement with our experimental results demonstrate the importance of phase-matching between electron field and radiative taper modes in mesoscopic structures. The local taper radius at the electron impact location determines the selective excitation of radiative modes with discrete angular momenta.
我们通过电子能量损失谱研究了三维单晶金锥形的光学模式。在非常接近尖端的地方,在所有光子能量为 0.75 到 2eV 的范围内,都检测到了宽带激发,这是带间跃迁的开始。然而,在离尖端很远的地方,我们观察到了具有大致与局部半径的倒数成正比的能量色散的明显共振。这些现象的本质是通过对锥形的有限差分时域模拟和纤维中能量损耗的分析处理来揭示的。我们的计算与实验结果的完美一致表明了在介观结构中电子场和辐射锥形模式之间的相位匹配的重要性。在电子撞击位置的局部锥形半径决定了离散角动量的辐射模式的选择性激发。