Roma Tre University, Via della Vasca Navale 84, 00146 Rome, Italy.
Opt Lett. 2011 Jan 15;36(2):211-3. doi: 10.1364/OL.36.000211.
We numerically demonstrate that properly designed plasmonic covers can be used to enhance the performance of near-field scanning optical microscopy (NSOM) systems based on the employment of apertureless metallic tip probes. The covering material, exhibiting a near-zero value of the real permittivity at the working frequency, is designed in such a way to dramatically reduce the undesired scattering due to the strongly plasmonic behavior of the tip. Though the light scattering by the tip end is necessary for the correct operation of NSOMs, the additional scattering due to the whole probe affects the signal-to-noise ratio and thus the resolution of the acquired image. By covering the whole probe but not the very tip, we show that unwanted scattering can be effectively reduced. A realistic setup, working at mid-IR frequencies and employing silicon carbide covers, has been designed and simulated to confirm the effectiveness of the proposed approach.
我们通过数值模拟证明,通过使用无孔径金属尖端探针,可以利用适当设计的等离子体覆盖物来提高近场扫描光学显微镜(NSOM)系统的性能。覆盖材料在工作频率下表现出实介电常数接近零的值,其设计方式可显著减少由于尖端强烈的等离子体行为而导致的不期望的散射。虽然尖端末端的光散射对于 NSOM 的正确操作是必要的,但由于整个探针引起的额外散射会影响信噪比,从而影响所获取图像的分辨率。通过覆盖整个探针而不是尖端,可以有效地减少不需要的散射。已经设计和模拟了一个工作在中红外频率并采用碳化硅覆盖物的现实设置,以证实所提出方法的有效性。