Shi Shuai, Wang Ren, Xiong Minhui, Zhou Qinyu, Wang Bing-Zhong, Shen Yijie
Institute of Applied Physics, University of Electronic Science and Technology of China, Chengdu, China.
Yangtze Delta Region Institute (Huzhou), University of Electronic Science and Technology of China, Huzhou, China.
Nanophotonics. 2024 Oct 31;14(6):741-747. doi: 10.1515/nanoph-2024-0480. eCollection 2025 Apr.
Topological structures reveal the hidden secrets and beauty in nature, such as the double helix in DNA, whilst, the manipulation of which in physical fields, especially in ultrafast structured light, draw booming attention. Here we introduce a new family of spatiotemporal light fields, i.e. helical pulses, carrying sophisticated double-helix singularities in its electromagnetic topological structures. The helical pulses were solved from Maxwell's equation as chiral extensions of toroidal light pulses but with controlled angular momentum dependence. We unveil that the double helix singularities can maintain their topological invariance during propagation and the field exhibits paired generation and annihilation of vortices and antivortices in ultrafast space-time, so as to be potential information carriers beating previous conventional vortex structured light.
拓扑结构揭示了自然界中隐藏的秘密和美感,比如DNA中的双螺旋结构,同时,在物理领域对其进行操控,尤其是在超快结构化光领域,引起了广泛关注。在此,我们介绍一类新的时空光场,即螺旋脉冲,其在电磁拓扑结构中携带复杂的双螺旋奇点。螺旋脉冲由麦克斯韦方程组求解得出,是环形光脉冲的手性扩展,但具有可控的角动量依赖性。我们揭示出双螺旋奇点在传播过程中能够保持其拓扑不变性,并且该场在超快时空里呈现出涡旋和反涡旋的成对产生与湮灭,从而有可能成为超越以往传统涡旋结构化光的信息载体。