Zhang Zhaorui, Gu Si, Gu Bing, Li Bingjue, Rui Guanghao
Opt Express. 2024 Jan 1;32(1):526-536. doi: 10.1364/OE.509594.
Recently, the emergence of transverse orbital angular momentum (OAM) as a novel characteristic of light has captured substantial attention, and the significance of adjustable OAM orientation has been underscored due to its pivotal role in the interaction between light and matter. In this work, we introduce a novel approach to manipulate the orientation of photonic OAM at subwavelength scales, leveraging spatiotemporal coupling. By tightly focusing a wavepacket containing dual spatiotemporal vortices and a spatial vortex through a high numerical aperture lens, the emergence of intricate coupling phenomena leads to entangled and intricately twisted vortex tunnels. As a consequence, the orientation of spatial OAM deviates from the conventional light axis. Through theoretical scrutiny, we unveil that the orientation of photonic OAM within the focal field is contingent upon the signs of the topological charges in both spatiotemporal and spatial domains. Additionally, the absolute values of these charges govern the precise orientation of OAM within their respective quadrants. Moreover, augmenting the pulse width of the incident light engenders a more pronounced deflection angle of photonic OAM. By astutely manipulating these physical parameters, unparalleled control over the spatial orientation of OAM becomes achievable. The augmented optical degrees of freedom introduced by this study hold considerable potential across diverse domains, including optical tweezers, spin-orbit angular momentum coupling, and quantum communication.
最近,横向轨道角动量(OAM)作为光的一种新特性的出现引起了广泛关注,并且由于其在光与物质相互作用中的关键作用,可调OAM取向的重要性也得到了强调。在这项工作中,我们引入了一种利用时空耦合在亚波长尺度上操纵光子OAM取向的新方法。通过高数值孔径透镜紧密聚焦包含双时空涡旋和一个空间涡旋的波包,复杂耦合现象的出现导致了纠缠且复杂扭曲的涡旋隧道。结果,空间OAM的取向偏离了传统的光轴。通过理论研究,我们揭示了焦场内光子OAM的取向取决于时空域和空间域中拓扑电荷的符号。此外,这些电荷的绝对值决定了OAM在其各自象限内的精确取向。而且,增加入射光的脉冲宽度会使光子OAM的偏转角更加明显。通过巧妙地操纵这些物理参数,可以实现对OAM空间取向的无与伦比的控制。本研究引入的增强光学自由度在包括光镊、自旋 - 轨道角动量耦合和量子通信在内的各种领域具有巨大潜力。