• Chinese Optics Letters
  • Vol. 20, Issue 12, 120501 (2022)
Ruijian Li1、2, Yuan Ren3、4、*, Tong Liu1、4, Chen Wang5, Zhengliang Liu1、4, Jie Zhao1、2, Rusheng Sun1、2, and Ziyang Wang6
Author Affiliations
  • 1Department of Aerospace Science and Technology, Space Engineering University, Beijing 101416, China
  • 2Laboratory of Quantum Detection & Awareness, Space Engineering University, Beijing 101416, China
  • 3Basic Ministry, Space Engineering University, Beijing 101416, China
  • 4State Key Laboratory of Laser Propulsion & Its Application, Space Engineering University, Beijing 101416, China
  • 563729 Troops of Chinese People’s Liberation Army, Taiyuan 030027, China
  • 6School of Space Information, Space Engineering University, Beijing 101416, China
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    DOI: 10.3788/COL202220.120501 Cite this Article Set citation alerts
    Ruijian Li, Yuan Ren, Tong Liu, Chen Wang, Zhengliang Liu, Jie Zhao, Rusheng Sun, Ziyang Wang. Generating large topological charge Laguerre–Gaussian beam based on 4K phase-only spatial light modulator[J]. Chinese Optics Letters, 2022, 20(12): 120501 Copy Citation Text show less

    Abstract

    The resolution of the spatial light modulator (SLM) screen and the encoding algorithm of the computer-generated hologram are the primary limiting factors in the generation of large topological charge vortex beams. This paper attempts to solve these problems by improving both the hardware and the algorithm. Theoretically, to overcome the limitations of beam waist radius, the amplitude profile function of large topological charge Laguerre–Gaussian (LG) beam is properly improved. Then, an experimental system employing a 4K phase-only SLM is set up, and the LG beams with topological charge up to 1200 are successfully generated. Furthermore, we discuss the effect of different beam waist radii on the generation of LG beams. Additionally, the function of the LG beam is further improved to generate an LG beam with a topological charge as high as 1400. Our results set a new benchmark for generating large topological charge vortex beams, which can be widely used in precise measurement, sensing, and communication.
    LG0l(r)=2π|l|!1ω0(2rω0)|l|exp(r2ω02),

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    LG0l(r)(2rω0)|l|exp(r2ω02),

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    LG0l(r)exp[(rrl)2(ω0/2)2].

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    rl=|l|nω0,

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    ω0ω0m|l|+1,

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    s(x,y)=a(x,y)exp[iϕ(x,y)],

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    s(x,y)=exp[iψ(a,ϕ)],

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    ψ(ϕ,a)=f(a)sinϕ.

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    h(x,y)=+Jn[f(a)]exp[in(ϕ+2πkxx+2πkyy)],

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    |l|max=2πR·NAλ,

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    |l|max3368.

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    θλπω0,

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    C=mn(AmnA)(BmnB)[mn(AmnA)2][mn(BmnB)2],

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    Ruijian Li, Yuan Ren, Tong Liu, Chen Wang, Zhengliang Liu, Jie Zhao, Rusheng Sun, Ziyang Wang. Generating large topological charge Laguerre–Gaussian beam based on 4K phase-only spatial light modulator[J]. Chinese Optics Letters, 2022, 20(12): 120501
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