• Laser & Optoelectronics Progress
  • Vol. 59, Issue 13, 1326001 (2022)
Yi Li1, Xingchun Chu1、*, Hanling Tang1, and Zhangbo Liu2
Author Affiliations
  • 1Information and Navigation College, Air Force Enginering University, Xi’an 710077, Shaanxi , China
  • 2Xi’an Satellite Control Center, Xi’an 710043, Shaanxi , China
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    DOI: 10.3788/LOP202259.1326001 Cite this Article Set citation alerts
    Yi Li, Xingchun Chu, Hanling Tang, Zhangbo Liu. Propagation and Evolution Properties of Finite Energy Airy Beams[J]. Laser & Optoelectronics Progress, 2022, 59(13): 1326001 Copy Citation Text show less
    Propagation track and intensity profile at different transmission distances of several finite energy Airy beams. (a1)~(b1) Exponentially decaying Airy beam; (a2)~(b2) constant amplitude Airy beam; (a3)~(b3) spatial truncation Airy beam; (a4)~(b4) frequency truncation Airy beam. ωc=5.79 rad/s, A=1
    Fig. 1. Propagation track and intensity profile at different transmission distances of several finite energy Airy beams. (a1)~(b1) Exponentially decaying Airy beam; (a2)~(b2) constant amplitude Airy beam; (a3)~(b3) spatial truncation Airy beam; (a4)~(b4) frequency truncation Airy beam. ωc=5.79 rad/s, A=1
    Influence of transverse scaling factor on non-diffracting propagation distance
    Fig. 2. Influence of transverse scaling factor on non-diffracting propagation distance
    Influence of transverse scaling factor x0 on properties of transverse self-acceleration. (a) x0 is 0.1 mm; (b) x0 is 0.3 mm; (c) x0 is 0.6 mm
    Fig. 3. Influence of transverse scaling factor x0 on properties of transverse self-acceleration. (a) x0 is 0.1 mm; (b) x0 is 0.3 mm; (c) x0 is 0.6 mm
    Influence of aperture truncation width on non-diffracting propagation distance
    Fig. 4. Influence of aperture truncation width on non-diffracting propagation distance
    Yi Li, Xingchun Chu, Hanling Tang, Zhangbo Liu. Propagation and Evolution Properties of Finite Energy Airy Beams[J]. Laser & Optoelectronics Progress, 2022, 59(13): 1326001
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