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中国物理学会期刊

相干合成涡旋光束的螺旋谱分析及应用研究

CSTR: 32037.14.aps.68.20190880

Spiral spectrum analysis and application ofcoherent synthetic vortex beams

CSTR: 32037.14.aps.68.20190880
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  • 应用螺旋谱分析理论, 推导了相干合成涡旋光束螺旋谱分量的位置和大小, 数值分析验证了理论推导的正确性. 基于上述谱分析理论, 可将螺旋谱分析结果作为相干合成涡旋光束质量评价函数并指导相干合成参数优化. 结果表明: 随着子光束数量和束腰半径的增加、组束环半径的减少可提高目标合成拓扑荷的模式纯度, 同时获得高质量涡旋光束. 这与采用桶中功率等传统评价函数得到的结论具有一致性.

     

    The vortex beam is a ring-shaped beam whose center intensity or axial intensity is zero in the propagation direction and whose phase has a spiral rising or falling gradient distribution, which is also called a dark hollow beam. Vortex beams have important applications in free-space optical communication, optical micromanipulation, quantum information processing, optical measurement, super-resolution imaging, laser processing, and material processing. In recent years, with the in-depth research on vortex beams, the application requirements for high-power vortex beams also increase. High-power and high-quality vortex beam can be obtained by coherent combining technology. However, the spiral spectrum characteristics of the vortex beam generated by coherent combining technology need further exploring. In this paper, based on the theory of spectral analysis, we derive the position and magnitude of the spiral phase spectral component of the coherent synthetic vortex beam. The numerical results verify the correctness of the theoretical derivation. Based on the above spectral analysis theory, the mode purity of the target synthesis topology charge can be used as the evaluation function to evaluate quality and optimize the parameters for the coherent synthetic vortex beam, and then to quantitatively guide the coherent synthesis of the vortex beam. The results show that with the increase of the number of sub-beams and the radius of the beam waist of the source plane, the reduction of the radius of the bundle ring and the mode purity of the target synthesis topology charge can be improved, and then we can obtain the high-quality vortex beam. This is consistent with the conclusion obtained by using traditional evaluation functions such as power in the bucket. The spiral spectrum analysis of the coherent synthetic vortex beam not only makes up for the lack of evaluation of the spiral phase synthesis effect by the traditional evaluation function, but also has certain reference significance for understanding the nature of the coherent synthesis technique.

     

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