Zhang Yi-Heng, Liu Si-Jia, Chen Peng, Zhu Dong, Chen Wen, Ge Shi-Jun, Wang Yu, Zhang Zhi-Feng, Lu Yan-Qing
National Laboratory of Solid State Microstructures, Key Laboratory of Intelligent Optical Sensing and Manipulation, College of Engineering and Applied Sciences, and Collaborative Innovation Center of Advanced Microstructures, Nanjing University, 210093, Nanjing, China.
Nat Commun. 2024 Feb 6;15(1):1108. doi: 10.1038/s41467-024-45299-8.
The next generation of high-capacity, multi-task optical informatics requires sophisticated manipulation of multiple degrees of freedom (DoFs) of light, especially when they are coupled in a non-separable way. Vector beam, as a typical non-separable state between the spin and orbital angular momentum DoFs, mathematically akin to entangled qubits, has inspired multifarious theories and applications in both quantum and classical regimes. Although qubit rotation is a vital and ubiquitous operation in quantum informatics, its classical analogue is rarely studied. Here, we demonstrate the logical rotation of vectorial non-separable states via the uniform self-assembled chiral superstructures, with favorable controllability, high compactness and exemption from formidable alignment. Photonic band engineering of such 1D chiral photonic crystal renders the incident-angle-dependent evolution of the spatially-variant polarizations. The logical rotation angle of a non-separable state can be tuned in a wide range over 4π by this single homogeneous device, flexibly providing a set of distinguished logic gates. Potential applications, including angular motion tracking and proof-of-principle logic network, are demonstrated by specific configuration. This work brings important insight into soft matter photonics and present an elegant strategy to harness high-dimensional photonic states.
下一代高容量、多任务光学信息学需要对光的多个自由度(DoF)进行复杂操控,特别是当它们以不可分离的方式耦合时。矢量光束作为自旋和轨道角动量自由度之间典型的不可分离状态,在数学上类似于纠缠量子比特,激发了量子和经典领域的各种理论与应用。尽管量子比特旋转在量子信息学中是一项至关重要且普遍存在的操作,但其经典类似物却鲜有研究。在此,我们通过均匀自组装手性超结构展示了矢量不可分离态的逻辑旋转,具有良好的可控性、高紧凑性且无需复杂的对准。这种一维手性光子晶体的光子带工程实现了空间变化偏振的入射角依赖性演化。通过这个单一的均匀器件,不可分离态的逻辑旋转角可在超过4π的宽范围内进行调谐,灵活地提供一组独特的逻辑门。通过特定配置展示了包括角运动跟踪和原理验证逻辑网络在内的潜在应用。这项工作为软物质光子学带来了重要见解,并提出了一种利用高维光子态的精妙策略。