论文标题
双偶性介电纳米颗粒二聚体的横向光学结合
Transverse optical binding for a dual dipolar dielectric nanoparticle dimer
论文作者
论文摘要
迄今为止尚未明确表达横向光学结合力和扭矩的物理起源。在这里,我们介绍了力和扭矩的分析表达式,用于由垂直于二聚体轴传播的平面波照明的双极介电二聚体。使用此分析模型,我们探讨了颗粒上总力和扭矩在颗粒上的杂交电偶极,磁性偶极和电磁偶性偶联相互作用的作用。我们发现与雷利近似的预测有很大的不同,特别是对于高折射索引颗粒,其中力由磁相互作用支配。与雷利近似的预测相比,这导致二聚体稳定性提高了一到四个数量级。对于扭矩的情况,这是由耦合相互作用主导的,并增加了数量级。我们的结果将有助于指导未来的实验性工作,以实验高折射式介电颗粒的光学结合。
The physical origins of the transverse optical binding force and torque beyond the Rayleigh approximation have not been clearly expressed to date. Here, we present analytical expressions of the force and torque for a dual dipolar dielectric dimer illuminated by a plane wave propagating perpendicularly to the dimer axis. Using this analytical model, we explore the roles of the hybridized electric dipolar, magnetic dipolar, and electric-magnetic dipolar coupling interactions in the total force and torque on the particles. We find significant departures from the predictions of the Rayleigh approximation, particularly for high-refractive-index particles, where the force is dominated by the magnetic interaction. This results in an enhancement of the dimer stability by one to four orders of magnitude compared to the predictions of the Rayleigh approximation. For the case of torque, this is dominated by the coupling interaction and increases by an order of magnitude. Our results will help to guide future experimental work in optical binding of high-refractive-index dielectric particles.