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通过与传播相关的偏振变换沿光路引入贝里相位梯度。

Introducing Berry phase gradients along the optical path via propagation-dependent polarization transformations.

作者信息

Dorrah Ahmed H, Tamagnone Michele, Rubin Noah A, Zaidi Aun, Capasso Federico

机构信息

Harvard John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge 02138, MA, USA.

Fondazione Istituto Italiano di Tecnologia, Genova, Italy.

出版信息

Nanophotonics. 2021 Nov 19;11(4):713-725. doi: 10.1515/nanoph-2021-0560. eCollection 2022 Jan.

Abstract

As a classical or quantum system undergoes a cyclic evolution governed by slow change in its parameter space, it acquires a topological phase factor known as the or phase. One popular manifestation of this phenomenon is the Gouy phase which arises when the radius of curvature of the wavefront changes adiabatically in a cyclic manner, for e.g., when focused by a lens. Here, we report on a new manifestation of the Berry phase in 3D structured light which arises when its polarization state adiabatically evolves along the optical path. We show that such a peculiar evolution of angular momentum, which occurs under free space propagation, is accompanied by an accumulated phase shift that elegantly coincides with Berry's prediction. Unlike the conventional dynamic phase, which accumulates monotonically with propagation, the Berry phase observed here can be engineered on demand, thereby enabling new possibilities; such as spin-dependent spatial frequency shifts, and modified phase matching in resonators and nonlinear interactions. Our findings expand the laws of wave propagation and can be applied in optics and beyond.

摘要

当经典或量子系统经历由其参数空间中的缓慢变化所支配的循环演化时,它会获得一个被称为贝里相位或几何相位的拓扑相位因子。这种现象的一种常见表现是古依相位,当波前的曲率半径以循环方式绝热变化时就会出现,例如,当由透镜聚焦时。在这里,我们报告了三维结构化光中贝里相位的一种新表现,它是在其偏振态沿光路绝热演化时出现的。我们表明,在自由空间传播过程中发生的这种角动量的特殊演化伴随着一个累积的相移,该相移与贝里的预测完美吻合。与传统的动态相位不同,传统动态相位随传播单调累积,这里观察到的贝里相位可以按需设计,从而带来新的可能性;例如自旋相关的空间频率偏移,以及谐振器和非线性相互作用中修改的相位匹配。我们的发现扩展了波传播的规律,并且可以应用于光学及其他领域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7a38/11501737/98db6ba572b5/j_nanoph-2021-0560_fig_001.jpg

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