• Optical Instruments
  • Vol. 47, Issue 1, 65 (2025)
Yiqian ZHU and Tao GENG*
Author Affiliations
  • School of Optical-Electrical and Computer Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China
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    DOI: 10.3969/j.issn.1005-5630.202401300017 Cite this Article
    Yiqian ZHU, Tao GENG. Optical force of azimuthally polarized circular Airy beams with a first order vortex on Rayleigh particles[J]. Optical Instruments, 2025, 47(1): 65 Copy Citation Text show less
    References

    [1] ASHKIN A, DZIEDZIC J M, BJORKHOLM J E et al. Observation of a single-beam gradient force optical trap for dielectric particles[J]. Optics Letters, 11, 288-290(1986).

    [2] HARADA Y, ASAKURA T. Radiation forces on a dielectric sphere in the Rayleigh scattering regime[J]. Optics Communications, 124, 529-541(1996).

    [3] BAUMGARTL J, MAZILU M, DHOLAKIA K. Optically mediated particle clearing using Airy wavepackets[J]. Nature Photonics, 2, 675-678(2008).

    [4] HE H, FRIESE M E J, HECKENBERG N R et al. Direct observation of transfer of angular momentum to absorptive particles from a laser beam with a phase singularity[J]. Physical Review Letters, 75, 826-829(1995).

    [5] ZHAO C L, CAI Y J, LU X H et al. Radiation force of coherent and partially coherent flat-topped beams on a Rayleigh particle[J]. Optics Express, 17, 1753-1765(2009).

    [6] LIU Z R, ZHAO D M. Radiation forces acting on a Rayleigh dielectric sphere produced by highly focused elegant Hermite-cosine-Gaussian beams[J]. Optics Express, 20, 2895-2904(2012).

    [7] EFREMIDIS N K, CHRISTODOULIDES D N. Abruptly autofocusing waves[J]. Optics Letters, 35, 4045-4047(2010).

    [9] QIAN J, LIU B Y, SUN H X et al. Broadband acoustic focusing by symmetric Airy beams with phased arrays comprised of different numbers of cavity structures[J]. Chinese Physics B, 26, 114304(2017).

    [11] FEDOROV V Y, PAPAZOGLOU D G, TZORTZAKIS S. Transformation of ring-Airy beams during efficient harmonic generation[J]. Optics Letters, 44, 2974-2977(2019).

    [12] MANOUSIDAKI M, PAPAZOGLOU D G, FARSARI M et al. Abruptly autofocusing beams enable advanced multiscale photo-polymerization[J]. Optica, 3, 525-530(2016).

    [13] ZHANG P, PRAKASH J, ZHANG Z et al. Trapping and guiding microparticles with morphing autofocusing Airy beams[J]. Optics Letters, 36, 2883-2885(2011).

    [14] JIANG Y F, HUANG K K, LU X H. Radiation force of abruptly autofocusing Airy beams on a Rayleigh particle[J]. Optics Express, 21, 24413-24421(2013).

    [15] LU W L, SUN X, CHEN H J et al. Abruptly autofocusing property and optical manipulation of circular Airy beams[J]. Physical Review A, 99, 013817(2019).

    [16] SHOU Q, KUANG W H, LIU M H et al. Two dimensional large-scale optical manipulation of microparticles by circular Airy beams with spherical and oblique wavefronts[J]. Optics Communications, 525, 128561(2022).

    [18] KOTLYAR V V, KOVALEV A A. Nonparaxial propagation of a Gaussian optical vortex with initial radial polarization[J]. Journal of the Optical Society of America A, 27, 372-380(2010).

    [19] DIENEROWITZ M, MAZILU M, DHOLAKIA K. Optical manipulation of nanoparticles: a review[J]. Journal of Nanophotonics, 2, 021875(2008).

    [20] DRAINE B T. The discrete-dipole approximation and its application to interstellar graphite grains[J]. Astrophysical Journal, 333, 848(1988).

    Yiqian ZHU, Tao GENG. Optical force of azimuthally polarized circular Airy beams with a first order vortex on Rayleigh particles[J]. Optical Instruments, 2025, 47(1): 65
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