Data Storage Institute, A*STAR (Agency for Science, Technology and Research) , 2 Fusionopolis Way, 138634, Singapore.
Nano Lett. 2017 Jun 14;17(6):3458-3464. doi: 10.1021/acs.nanolett.7b00381. Epub 2017 May 8.
Subwavelength confined waveguiding is experimentally demonstrated with high refractive index dielectric nanoparticles with photon energy propagation at distances beyond 500 μm. These particles have naturally occurring electric and magnetic dipole resonances. When they are placed in a 1D chain, the magnetic resonances of adjacent elements couple to each other, providing a means to transport energy at visible or NIR wavelengths in a confined mode. Chains of nanoparticles made of silicon were fabricated and guided waves were measured with near-field scanning optical microscopy. Propagation loss is quantified at 34 dB/mm for 720 nm and 5.5 dB/mm for 960 nm wavelengths with 150 and 220 nm diameter particles, respectively. Simulations confirm the unique properties of this waveguiding in comparison with photonic crystals. The resonant nature of the waveguide lays a foundation for integrated photonics beyond nanowire waveguides of silicon and silicon nitride. This technology is promising for more compact and deeper photonic integration such as right angle bends, more compact modulators, slow light and interfacing with single photon emitters for photonic integrated circuits, quantum communications, and biosensing.
亚波长限制波导通过具有光子能量传播距离超过 500μm 的高折射率介电纳米粒子得到实验验证。这些粒子具有天然存在的电偶极子和磁偶极子共振。当它们被放置在一维链中时,相邻元素的磁共振相互耦合,为在可见光或近红外波长下以受限模式传输能量提供了一种手段。由硅制成的纳米粒子链被制造出来,并通过近场扫描光学显微镜测量了导波。对于 720nm 和 960nm 波长,分别使用直径为 150nm 和 220nm 的粒子,传播损耗分别量化为 34dB/mm 和 5.5dB/mm。模拟证实了这种导波与光子晶体相比的独特性质。波导的共振性质为超越硅和氮化硅纳米线波导的集成光子学奠定了基础。这项技术有望用于更紧凑和更深的光子集成,如直角弯曲、更紧凑的调制器、慢光以及与单光子发射器的接口,用于光子集成电路、量子通信和生物传感。