Sun Chengwei, Rong Kexiu, Wang Yujia, Li Hongyun, Gong Qihuang, Chen Jianjun
State Key Laboratory for Mesoscopic Physics, Collaborative Innovation Center of Quantum Matter, Department of Physics, Peking University, Beijing 100871, People's Republic of China.
Nanotechnology. 2016 Feb 12;27(6):065501. doi: 10.1088/0957-4484/27/6/065501. Epub 2016 Jan 14.
Subwavelength plasmonic waveguides are the most promising candidates for developing planar photonic circuitry platforms. In this study a subwavelength metallic ridge waveguide is numerically and experimentally investigated. Differing from previous plasmonic waveguides, the metallic strip of the subwavelength ridge waveguide is placed on a thick metal film. It is found that the surface-plasmon-polariton (SPP) waveguide modes result from the coupling of the corner modes in the two ridge corners. The bottom metal film has a great influence on the SPP modes, and nearly all the evanescent fields of the SPP modes are tightly confined outside the ridge waveguide. Simulations show that 50% of the total power flow in the SPP mode can be confined outside the ridge waveguide with an area of only about λ (2)/20. The propagation length is still about 10 times the plasmon wavelength. Through comparison with a metallic strip placed directly on the dielectric substrate, the proposed ridge waveguide exhibits a much higher sensing performance. This plasmonic ridge waveguide with deep-subwavelength outside-field confinements is of significance in a range of nano-optics applications, especially in nanosensing.
亚波长等离子体波导是开发平面光子电路平台最有前景的候选者。在本研究中,对一种亚波长金属脊形波导进行了数值和实验研究。与先前的等离子体波导不同,亚波长脊形波导的金属条放置在厚金属膜上。发现表面等离子体激元(SPP)波导模式是由两个脊角处的角模式耦合产生的。底部金属膜对SPP模式有很大影响,并且几乎所有SPP模式的倏逝场都被紧密限制在脊形波导之外。模拟表明,SPP模式中50%的总功率流可以被限制在面积仅约为λ(2)/20的脊形波导之外。传播长度仍然约为等离子体波长的10倍。通过与直接放置在电介质基板上的金属条进行比较,所提出的脊形波导表现出更高的传感性能。这种具有深亚波长外场限制的等离子体脊形波导在一系列纳米光学应用中具有重要意义,特别是在纳米传感方面。