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    Decomposition for transverse spins in structured vector fields

    Zhi-Kang Xiong1, Zhen-Lai Wang2, Y. Liu (刘泱杰)1,3,*, Meng Wen1, and Bin Zhou1,4

    • 1Department of Physics, School of Physics, Hubei University, Wuhan 430062, China
    • 2School of Mathematics and Physics, Hubei Polytechnic University, Huangshi 435003, China
    • 3Lanzhou Center for Theoretical Physics, Key Laboratory of Theoretical Physics of Gansu Province, and Key Laboratory of Quantum Theory and Applications of MoE, Lanzhou University, Lanzhou 730000, China
    • 4Wuhan Institute of Quantum Technology, Wuhan 430206, China

    • *Contact author: yangjie@hubu.edu.cn

    Phys. Rev. A 112, 053513 – Published 14 November, 2025

    DOI: https://doi.org/10.1103/m8nt-4g41

    Abstract

    Classical vector waves can possess intricate spin angular momenta (SAM), which are perpendicular to the propagation direction, as revealed by the recent recognition of surprisingly transverse SAM in electromagnetic (EM) fields. In this paper, we employ the Hertz potential method to define structured vector fields and analytically decompose the SAM of the wave fields in two parts. Our approach of decomposition not only confirms that transverse SAM may originate from the first-order spatial inhomogeneity of the Poynting momentum, but also points out that for nonplanar vector waves with near fields, an extraordinary spin appears as the other distinct part of transverse spin. By four examples of vector beams, we further demonstrate that the proposed transverse spins prevail universally in both propagating and evanescent waves. This work renews our fundamental understanding of the decomposition of SAM for classical vector waves.

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