论文标题

部分可观测时空混沌系统的无模型预测

Epsilon-Near-Zero (ENZ)-based Optomechanics

论文作者

Kiasat, Y., Donato, M. G., Hinczewski, M., ElKabbash, M., Letsou, T., Saija, R., Marago, O. M., Strangi, G., Engheta, N.

论文摘要

光力学涉及光的机械效应的控制和应用,这是由于光散射中光子动量的重新分布而导致的。在这里,我们在分析和数值上,在埃普西隆 - 纳尔 - 零(ENZ)超材料接近的极化粒子上进行了光学作用。我们查看从纳米到显微镜的取消吸光度力学的一般特征,从而利用了不同的理论方法(偶极近似,有限元计算,过渡(T-)矩阵)。我们讨论了逼真的分层材料作为我们的ENZ底物在光学力上的作用,并通过研究一系列复杂颗粒(电介质,核心,等离激子椭圆形)来分析组成和形状的影响。讨论了对结果的物理见解,并预测未来的研究方向。我们的结果为利用工程材料和表面提供了新的可能性,以操纵和量身定制光学力学中的光诱导力。

Optomechanics deals with the control and applications of mechanical effects of light that stems from the redistribution of photon momenta in light scattering. Here, we investigate, analytically and numerically, optical forces on polarizable particles in proximity of epsilon-near-zero (ENZ) metamaterials. We look at the general features of the repulsive-attractive optomechanics from the nano to the microscale exploiting different theoretical methods (dipole approximation, finite elements calculations, transition (T-)matrix). We discuss the role of realistic layered materials, as our ENZ substrate, on optical forces and analyze the influence of composition and shape by studying a range of complex particles (dielectric, core-shell, plasmonic ellipsoids). Physical insights into the results are discussed and future research directions are forecasted. Our results provide new possibilities in exploiting engineered materials and surfaces for the manipulation and tailoring of light-induced forces in optomechanics.

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