Acebal Pablo, Carretero Luis, Blaya Salvador
Department of Materials Science, Optics and Electronic Technology, Miguel Hernández University, Elche, Spain.
Sci Rep. 2021 Apr 13;11(1):8073. doi: 10.1038/s41598-021-87456-9.
Focusing systems with high numerical aperture can be used to convert spin angular momentum into orbital angular momentum with efficiencies of 50%, while for low numerical apertures this conversion vanishes. In this paper, based on the properties of binary Fresnel zone plates, we propose a structure that is achieved by making an accurate selection of the width and the depth of the rings. This allows us to obtain a large increase in the spin to orbital angular momentum conversion of the resulting focusing fields, and it also has the special characteristic that the obtained conversion is higher for low numerical aperture structures, where standard focusing systems do not work. The ability of the system to perform this extraordinary conversion is demonstrated by FDTD methods and an analytical model developed using a combination of guided mode theory for the structure and Stratton-Chu diffraction theory.
具有高数值孔径的聚焦系统可用于将自旋角动量转换为轨道角动量,转换效率可达50%,而对于低数值孔径,这种转换则消失。在本文中,基于二元菲涅尔波带片的特性,我们提出了一种通过精确选择环的宽度和深度来实现的结构。这使我们能够在所得聚焦场的自旋到轨道角动量转换方面实现大幅提升,并且它还具有这样的特殊特性,即对于低数值孔径结构,所获得的转换更高,而在这种情况下标准聚焦系统不起作用。通过时域有限差分法(FDTD)以及结合该结构的导模理论和斯特拉顿 - 朱衍射理论开发的解析模型,证明了该系统执行这种非凡转换的能力。