Miyazaki Hideki T, Kurokawa Yoichi
Materials Engineering Laboratory, National Institute for Materials Science, 1-2-1 Sengen, Tsukuba, Ibaraki 305-0047, Japan.
Phys Rev Lett. 2006 Mar 10;96(9):097401. doi: 10.1103/PhysRevLett.96.097401. Epub 2006 Mar 7.
We demonstrate controlled squeezing of visible light waves into nanometer-sized optical cavities. The light is perpendicularly confined in a few-nanometer-thick SiO2 film sandwiched between Au claddings in the form of surface plasmon polaritons and exhibits Fabry-Perot resonances in a longitudinal direction. As the thickness of the dielectric core is reduced, the plasmon wavelength becomes shorter; then a smaller cavity is realized. A dispersion relation down to a surface plasmon wavelength of 51 nm for a red light, which is less than 8% of the free-space wavelength, was experimentally observed. Any obvious breakdowns of the macroscopic electromagnetics based on continuous dielectric media were not disclosed for 3-nm-thick cores.
我们展示了将可见光波可控地压缩到纳米尺寸的光学腔中。光以表面等离激元极化激元的形式垂直限制在夹在金包层之间的几纳米厚的SiO₂ 薄膜中,并在纵向表现出法布里 - 珀罗共振。随着介电芯厚度的减小,等离激元波长变短;然后实现了更小的腔。通过实验观察到了红光的表面等离激元波长低至51纳米的色散关系,该波长小于自由空间波长的8%。对于3纳米厚的芯,未发现基于连续介电介质的宏观电磁学有任何明显的失效情况。