Chen Huajin, Zheng Hongxia, Lu Wanli, Liu Shiyang, Ng Jack, Lin Zhifang
School of Electrical and Information Engineering, Guangxi University of Science and Technology, Liuzhou, Guangxi 545006, China.
State Key Laboratory of Surface Physics and Department of Physics, Fudan University, Shanghai 200433, China.
Phys Rev Lett. 2020 Aug 14;125(7):073901. doi: 10.1103/PhysRevLett.125.073901.
Lateral optical forces in a direction perpendicular to light propagation have attracted increasing interest in recent years. Up to now, all lateral forces can be attributed to the symmetry breaking in the lateral directions caused by either the morphology of the scatterer geometry or the optical fields impinging on the scatterer. Here we demonstrate, both numerically and analytically, that when an isotropic scatterer breaks the electric-magnetic symmetry, a new type of anomalous lateral force can be induced along the direction of translational invariance where the illumination striking the scatterer has no propagation, field gradient, or spin density vortex (Belinfante's spin momentum). Our analytical results are rigorous for an arbitrary size scatterer, ensuring the universality of our conclusion. Furthermore, the electric-magnetic symmetry-breaking-induced lateral force is comparable in magnitude to other components of the optical force and reversible in direction for different polarizations of the illuminating light, rendering it capable of practical optical manipulation as well as enriching the understanding of light-matter interaction.
近年来,垂直于光传播方向的横向光学力引起了越来越多的关注。到目前为止,所有的横向力都可以归因于散射体几何形态或入射到散射体上的光场在横向方向上引起的对称性破缺。在这里,我们通过数值和解析方法证明,当各向同性散射体打破电磁对称性时,沿着平移不变性方向可以诱导出一种新型的异常横向力,在该方向上照射散射体的光没有传播、场梯度或自旋密度涡旋(贝林范特自旋动量)。我们的解析结果对于任意尺寸的散射体都是严格的,确保了我们结论的普遍性。此外,电磁对称性破缺引起的横向力在大小上与光学力的其他分量相当,并且对于不同偏振的照明光,其方向是可逆的,这使得它能够用于实际的光学操纵,并丰富了对光与物质相互作用的理解。