论文标题

用复合微球调整光学拉力

Tailoring optical pulling forces with composite microspheres

论文作者

Ali, R., Pinheiro, F. A., Dutra, R. S., Neto, P. A. Maia

论文摘要

光学拉力或拖拉机束可以通过将入射光子向前重定向到光传播。通常,使用具有非常小的半键角的贝塞尔束可以实现这一目标,从而极大地限制了其适用性。一个人可以使用平面波的叠加来避免此问题。为了研究由一对非色平面波施加的光学拉力力,我们基于MIE理论,Debye电位和Wigner旋转矩阵开发了一个理论框架。我们将此框架应用于金属二电复合颗粒上的光学拉力,我们将其作为优化和量身定制拖拉机束的替代材料平台。确实,我们证明,通过将一些等离子夹杂物添加到任意尺寸的低权流指数介电颗粒中,我们能够产生在相应的均质颗粒中无法发生的依赖性的依赖性光学拉力拉力。总的来说,我们的发现不仅提供了计算光学拉力力量的创新理论方法,而且还提供了新的策略来量身定制和优化它们,从而为提高其适用性铺平了道路。

Optical pulling forces or tractor beams can pull particles against light propagation by redirecting the incident photons forward. This is typically achieved using Bessel beams with very small half-cone angles, which considerably limits its applicability. One can circumvent such issue by using a superposition of plane waves. In order to investigate optical pulling forces exerted by a pair of non-colinear plane waves, we develop a theoretical framework based on Mie theory, Debye potentials and Wigner rotation matrices. We apply this framework to calculate the optical pulling force on metallo-dielectric composite particles, which we put forward as an alternative material platform to optimize and tailor tractor beams. Indeed we demonstrate that by adding a few plasmonic inclusions to low-refractive index dielectric particles of arbitrary sizes, we are able to produce polarization dependent optical pulling forces that cannot occur in the corresponding homogeneous particles. Altogether our findings not only provide innovative theoretical methods to compute optical pulling forces, but also provide new strategies to tailor and optimize them, paving the way to increase their applicability.

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