论文标题
极化干涉率:用于生成矢量场的多功能工具,测量拓扑电荷和实施旋转轨道控制的栅极。
Polarization interferometric prism: a versatile tool for generation of vector fields, measurement of topological charges and implementation of a spin-orbit Controlled-Not gate
论文作者
论文摘要
光学涡流和矢量场是两种重要类型的结构化光场。由于它们在许多科学领域中的广泛应用和独特的特征,因此对此类领域的一代,操纵和测量引起了极大的兴趣,并成为非常重要的主题。但是,生成矢量场的大多数方法在灵活性,效率,稳定性和简单性之间都具有权衡。同时,测量拓扑费用的一种简单而直接的方法,尤其是对于高阶光学涡流,仍然是一个挑战。在这里,我们设计和制造一个棱镜:极化干涉棱镜(PIP)作为单元素干涉仪,可以方便地将光学涡流转换为具有高效率的矢量场,并可用于精确测量拓扑电荷(绝对值和符号),即使具有高阶,也可以使用较高的顺序。在实验上,我们生成了各种矢量场,全局保真度范围从0.963到0.993,并通过计算在输出强度模式上均匀分布的花瓣的数量来测量光学涡流的拓扑电荷。作为一种多功能工具,可以生成,操纵和检测单光子的自旋轨道状态,PIP还可以在单光子状态下使用量子信息处理。在实验中,PIP被用作生成的28个两数分状态的自旋轨道控制栅极,实现了从0.966到0.995的状态保真度,并证明了PIP对单个光子的可行性。
Optical vortex and vector field are two important types of structured optical fields. Due to their wide applications and unique features in many scientific realms, the generation, manipulation and measurement of such fields have attracted significant interest and become very important topics. However, most ways to generate vector fields have a trade-off among flexibility, efficiency, stability, and simplicity. Meanwhile, an easy and direct way to measure the topological charges, especially for high order optical vortex, is still a challenge. Here we design and manufacture a prism: polarization interferometric prism (PIP) as a single-element interferometer, which can conveniently convert an optical vortex to vector fields with high efficiency and be utilized to precisely measure the topological charge (both absolute value and sign) of an arbitrary optical vortex, even with a high order. Experimentally we generate a variety of vector fields with global fidelity ranging from 0.963 to 0.993 and measure the topological charge of an optical vortex by counting the number of petals uniformly distributed over a ring on the output intensity patterns. As a versatile tool to generate, manipulate and detect the spin-orbital state of single photons, PIP can also work in single-photon regime for quantum information processing. In experiment, the PIP is utilized as a spin-orbit Controlled-Not gate on the generated 28 two-qubit states, achieving the state fidelities ranging from 0.966 to 0.995 and demonstrating the feasibility of the PIP for single photons.