Wang Guanghui, Ying Zhoufeng, Ho Ho-pui, Huang Ying, Zou Ningmu, Zhang Xuping
Opt Lett. 2016 Feb 1;41(3):528-31. doi: 10.1364/OL.41.000528.
We propose a plasmonic nano-optical conveyor belt for peristaltic transport of nano-particles. Instead of illumination from the top, waveguide-coupled excitation is used for trapping particles with a higher degree of precision and flexibility. Graded nano-rods with individual dimensions coded to have resonance at specific wavelengths are incorporated along the waveguide in order to produce spatially addressable hot spots. Consequently, by switching the excitation wavelength sequentially, particles can be transported to adjacent optical traps along the waveguide. The feasibility of this design is analyzed using three-dimensional finite-difference time-domain and Maxwell stress tensor methods. Simulation results show that this system is capable of exciting addressable traps and moving particles in a peristaltic fashion with tens of nanometers resolution. It is the first, to the best of our knowledge, report about a nano-optical conveyor belt with waveguide-coupled excitation, which is very important for scalability and on-chip integration. The proposed approach offers a new design direction for integrated waveguide-based optical manipulation devices and its application in large scale lab-on-a-chip integration.
我们提出了一种用于纳米颗粒蠕动传输的等离子体纳米光输送带。与从顶部照明不同,波导耦合激发用于以更高的精度和灵活性捕获颗粒。沿波导并入具有编码为在特定波长处产生共振的单个尺寸的渐变纳米棒,以产生空间可寻址的热点。因此,通过依次切换激发波长,颗粒可以沿着波导传输到相邻的光阱。使用三维时域有限差分法和麦克斯韦应力张量法分析了该设计的可行性。模拟结果表明,该系统能够激发可寻址的阱,并以蠕动方式移动颗粒,分辨率可达数十纳米。据我们所知,这是关于具有波导耦合激发的纳米光输送带的首次报道,这对于可扩展性和片上集成非常重要。所提出的方法为基于集成波导的光学操纵装置及其在大规模芯片实验室集成中的应用提供了新的设计方向。