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在紧聚焦电磁场中构建光学晶格型斯格明子阵列。

Construction of optical lattice-type skyrmion arrays in tightly focused electromagnetic field.

作者信息

Wang Canghai, Wang Jiming, Huang Can, Zhang Ding, Liu Sen, Liu Youwen

出版信息

Opt Express. 2025 Jan 27;33(2):3068-3081. doi: 10.1364/OE.546798.

Abstract

By utilizing the time inversion of radiation from spatial dipole arrays, we propose a method for constructing the spatial lattice-type skyrmion arrays under 4 focusing conditions, including Néel-, Bloch-, and Anti-skyrmions/merons. The Richards-Wolf vector diffraction theory is applied to analyze the radiation field emitted by dipole arrays, aiming to determine the incident field required under a high numerical aperture (NA=0.95). We construct spatial optical skyrmion arrays consisting of multiple topological points and investigate the distribution characteristics of the tightly focused field. The results indicate that diverse morphologies of optical skyrmions/merons can be achieved by adjusting the vectorial distribution within the unit dipole arrays. The high degree of freedom in combining optical skyrmion arrays holds significant potential for applications in high-density storage and precision measurement.

摘要

通过利用空间偶极子阵列辐射的时间反演,我们提出了一种在4种聚焦条件下构建空间晶格型斯格明子阵列的方法,包括奈尔型、布洛赫型以及反斯格明子/磁单极子。应用理查兹-沃尔夫矢量衍射理论分析偶极子阵列发射的辐射场,旨在确定高数值孔径(NA = 0.95)下所需的入射场。我们构建了由多个拓扑点组成的空间光学斯格明子阵列,并研究了紧聚焦场的分布特性。结果表明,通过调整单位偶极子阵列内的矢量分布,可以实现多种形态的光学斯格明子/磁单极子。光学斯格明子阵列组合的高自由度在高密度存储和精密测量应用中具有巨大潜力。

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