Wenzel Marc Tobias, Härtling Thomas, Olk Phillip, Kehr Susanne C, Grafström Stefan, Winnerl Stephan, Helm Manfred, Eng Lukas M
Institute of Applied Photophysics, Technische Universität Dresden, 01062 Dresden, Germany.
Opt Express. 2008 Aug 4;16(16):12302-12. doi: 10.1364/oe.16.012302.
We report on the implementation of metal nanoparticles as probes for scattering and apertureless near-field optical investigations in the mid-infrared (mid-IR) spectral regime. At these wavelengths, an efficient electric-field confinement is necessary and achieved here through a gold metal nanoparticle of 80 nm in diameter (Au80-MNP) acting as the optical antenna. The Au80-MNP is attached to a standard AFM cantilever used as the spatial manipulator. When approached to a sample surface while being illuminated with an infrared beam, the Au80-MNP produces a considerably improved spatial confinement of the electric field compared to an ordinary scattering AFM tip. We demonstrate here the confinement normal to the sample surface by making use of a sample-induced phonon polariton resonance in a ferroelectric lithium niobate sample. Our experimental findings are in very good agreement with the quasistatic dipole model and show improved optical resolution via well-selected antenna particles.
我们报道了在中红外光谱区域将金属纳米颗粒用作散射和无孔径近场光学研究探针的应用。在这些波长下,需要有效的电场限制,本文通过直径为80 nm的金金属纳米颗粒(Au80-MNP)作为光学天线来实现。Au80-MNP附着在用作空间操纵器的标准原子力显微镜悬臂上。当用红外光束照射并靠近样品表面时,与普通散射原子力显微镜尖端相比,Au80-MNP能显著改善电场的空间限制。我们通过利用铁电铌酸锂样品中的样品诱导声子极化激元共振,展示了垂直于样品表面的限制。我们的实验结果与准静态偶极子模型非常吻合,并通过精心选择的天线颗粒显示出更高的光学分辨率。