论文标题
用于任意极化对转换的复杂伴随介电介电元面积
Complex-birefringent dielectric metasurfaces for arbitrary polarization-pair transformations
论文作者
论文摘要
双线性材料或纳米结构引入两个线性极化之间的相位差异,这是波板的运行,用于光线的极化控制。在这里,我们开发了跨境,以实现一类不同的复杂双向波板,它们将偏振转换与明智定制的极化依赖性相位延迟和通过衍射进行振幅过滤结合。我们证明,损失的存在使得从任何通常非正交的极化对到输出的任何其他对的映射。我们基于成对的纳米索子结构建立了最佳的理论设计框架,并在实验上展示了偏振差异和极化耦合与非常规相的极化耦合时,在实验上证明了元时间的独特特性。此外,我们揭示了这些元面积可以对两光子极化编码的量子状态进行任意转换,包括修改纠缠程度。因此,这种平坦的设备可以促进用于经典和量子应用的新型多功能偏振光学设备。
Birefringent materials or nanostructures that introduce phase differences between two linear polarizations underpin the operation of wave plates for polarization control of light. Here we develop metasurfaces realizing a distinct class of complex-birefringent wave plates, which combine polarization transformation with a judiciously tailored polarization-dependent phase retardance and amplitude filtering via diffraction. We prove that the presence of loss enables the mapping from any chosen generally non-orthogonal pair of polarizations to any other pair at the output. We establish an optimal theoretical design-framework based on pairwise nanoresonator structures and experimentally demonstrate unique properties of metasurfaces in the amplification of small polarization differences and polarization coupling with unconventional phase control. Furthermore, we reveal that these metasurfaces can perform arbitrary transformations of biphoton polarization-encoded quantum states, including the modification of the degree of entanglement. Thereby, such flat devices can facilitate novel types of multi-functional polarization optics for classical and quantum applications.