Liu Hongfeng, Panmai Mingcheng, Peng Yuanyuan, Lan Sheng
Opt Express. 2017 May 29;25(11):12357-12371. doi: 10.1364/OE.25.012357.
We investigated theoretically and numerically the optical pulling and pushing forces acting on silicon (Si) nanospheres (NSs) with strong coherent interaction between electric and magnetic resonances. We examined the optical pulling and pushing forces exerted on Si NSs by two interfering waves and revealed the underlying physical mechanism from the viewpoint of electric- and magnetic-dipole manipulation. As compared with a polystyrene (PS) NS, it was found that the optical pulling force for a Si NS with the same size is enlarged by nearly two orders of magnitude. In addition to the optical pulling force appearing at the long-wavelength side of the magnetic dipole resonance, very large optical pushing force is observed at the magnetic quadrupole resonance. The correlation between the optical pulling/pushing force and the directional scattering characterized by the ratio of the forward to backward scattering was revealed. More interestingly, it was found that the high-order electric and magnetic resonances in large Si NSs play an important role in producing optical pulling force which can be generated by not only s-polarized wave but also p-polarized one. Our finding indicates that the strong coherent interaction between the electric and magnetic resonances existing in nanoparticles with large refractive indices can be exploited to manipulate the optical force acting on them and the correlation between the optical force and the directional scattering can be used as guidance. The engineering and manipulation of optical forces will find potential applications in the trapping, transport and sorting of nanoparticles.
我们从理论和数值上研究了作用于硅(Si)纳米球(NSs)上的光学拉力和推力,这些纳米球在电共振和磁共振之间存在强相干相互作用。我们研究了两束干涉波对Si纳米球施加的光学拉力和推力,并从电偶极子和磁偶极子操控的角度揭示了其潜在的物理机制。与聚苯乙烯(PS)纳米球相比,发现相同尺寸的Si纳米球的光学拉力增大了近两个数量级。除了在磁偶极子共振的长波长侧出现光学拉力外,在磁四极子共振处还观察到非常大的光学推力。揭示了光学拉力/推力与以前向散射与后向散射之比为特征的定向散射之间的相关性。更有趣的是,发现在大尺寸Si纳米球中的高阶电共振和磁共振在产生光学拉力方面起着重要作用,这种光学拉力不仅可以由s偏振波产生,也可以由p偏振波产生。我们的发现表明,存在于具有大折射率的纳米颗粒中的电共振和磁共振之间的强相干相互作用可用于操控作用于它们的光学力,并且光学力与定向散射之间的相关性可作为指导。光学力的工程和操控将在纳米颗粒的捕获、传输和分选方面找到潜在应用。