• Photonics Research
  • Vol. 9, Issue 8, 1598 (2021)
Yan Zhou and Minghui Hong*
Author Affiliations
  • Department of Electrical and Computer Engineering, National University of Singapore, Singapore 117576, Singapore
  • show less
    DOI: 10.1364/PRJ.430514 Cite this Article Set citation alerts
    Yan Zhou, Minghui Hong. Formation of a three-dimensional bottle beam via an engineered microsphere[J]. Photonics Research, 2021, 9(8): 1598 Copy Citation Text show less
    References

    [1] A. Ashkin. Acceleration and trapping of particles by radiation pressure. Phys. Rev. Lett., 24, 156-159(1970).

    [2] M. Daly, M. Sergides, S. Nic Chormaic. Optical trapping and manipulation of micrometer and submicrometer particles. Laser Photon. Rev., 9, 309-329(2015).

    [3] A. Ashkin, J. M. Dziedzic, J. E. Bjorkholm, S. Chu. Observation of a single-beam gradient force optical trap for dielectric particles. Opt. Lett., 11, 288-290(1986).

    [4] K. Dholakia, P. Reece, M. Gu. Optical micromanipulation. Chem. Soc. Rev., 37, 42-55(2008).

    [5] J. M. Zhu, X. Q. Zhu, Y. F. Zuo, X. J. Hu, Y. Shi, L. Liang, Y. Yang. Optofluidics: the interaction between light and flowing liquids in integrated devices. Opto-Electron. Adv., 2, 19000701(2019).

    [6] W. Liu, D. S. Dong, H. Yang, Q. H. Gong, K. B. Shi. Robust and high-speed rotation control in optical tweezers by using polarization synthesis based on heterodyne interference. Opto-Electron. Adv., 3, 200022(2020).

    [7] E. Otte, C. Denz. Optical trapping gets structure: structured light for advanced optical manipulation. Appl. Phys. Rev., 7, 041308(2020).

    [8] C. Bradac. Nanoscale optical trapping: a review. Adv. Opt. Mater., 6, 1800005(2018).

    [9] A. Constable, J. Kim, J. Mervis, F. Zarinetchi, M. Prentiss. Demonstration of a fiber-optical light-force trap. Opt. Lett., 18, 1867-1869(1993).

    [10] C. Liberale, P. Minzioni, F. Bragheri, F. De Angelis, E. Di Fabrizio, I. Cristiani. Miniaturized all-fibre probe for three-dimensional optical trapping and manipulation. Nat. Photonics, 1, 723-727(2007).

    [11] Y. Liu, M. Yu. Investigation of inclined dual-fiber optical tweezers for 3D manipulation and force sensing. Opt. Express, 17, 13624-13638(2009).

    [12] A. Asadollahbaik, S. Thiele, K. Weber, A. Kumar, J. Drozella, F. Sterl, A. M. Herkommer, H. Giessen, J. Fick. Highly efficient dual-fiber optical trapping with 3D printed diffractive Fresnel lenses. ACS Photon., 7, 88-97(2020).

    [13] M. Plidschun, H. Ren, J. Kim, R. Förster, S. A. Maier, M. A. Schmidt. Ultrahigh numerical aperture meta-fibre for flexible optical trapping. Light Sci. Appl., 10, 57(2021).

    [14] S. Kawata, T. Tani. Optically driven Mie particles in an evanescent field along a channeled waveguide. Opt. Lett., 21, 1768-1770(1996).

    [15] A. H. J. Yang, T. Lerdsuchatawanich, D. Erickson. Forces and transport velocities for a particle in a slot waveguide. Nano Lett., 9, 1182-1188(2009).

    [16] S. Yu, J. Lu, V. Ginis, S. Kheifets, S. W. D. Lim, M. Qiu, T. Gu, J. Hu, F. Capasso. On-chip optical tweezers based on freeform optics. Optica, 8, 409-414(2021).

    [17] M. L. Juan, M. Righini, R. Quidant. Plasmon nano-optical tweezers. Nat. Photonics, 5, 349-356(2011).

    [18] K. B. Crozier. Quo vadis, plasmonic optical tweezers?. Light Sci. Appl., 8, 35(2019).

    [19] H. Tan, H. Hu, L. Huang, K. Qian. Plasmonic tweezers for optical manipulation and biomedical applications. Analyst, 145, 5699-5712(2020).

    [20] Y. Y. Sun, X. C. Yuan, L. S. Ong, J. Bu, S. W. Zhu, R. Liu. Large-scale optical traps on a chip for optical sorting. Appl. Phys. Lett., 90, 031107(2007).

    [21] S. Lin, E. Schonbrun, K. Crozier. Optical manipulation with planar silicon microring resonators. Nano Lett., 10, 2408-2411(2010).

    [22] A. Krishnan, N. Huang, S.-H. Wu, L. J. Martínez, M. L. Povinelli. Enhanced and selective optical trapping in a slot-graphite photonic crystal. Opt. Express, 24, 23271-23279(2016).

    [23] J. Arlt, M. J. Padgett. Generation of a beam with a dark focus surrounded by regions of higher intensity: the optical bottle beam. Opt. Lett., 25, 191-193(2000).

    [24] V. G. Shvedov, A. V. Rode, Y. V. Izdebskaya, A. S. Desyatnikov, W. Krolikowski, Y. S. Kivshar. Giant optical manipulation. Phys. Rev. Lett., 105, 118103(2010).

    [25] V. G. Shvedov, A. S. Desyatnikov, A. V. Rode, W. Krolikowski, Y. S. Kivshar. Optical guiding of absorbing nanoclusters in air. Opt. Express, 17, 5743-5757(2009).

    [26] V. G. Shvedov, C. Hnatovsky, A. V. Rode, W. Krolikowski. Robust trapping and manipulation of airborne particles with a bottle beam. Opt. Express, 19, 17350-17356(2011).

    [27] A. Khoroshun, A. Ryazantsev, O. Ryazantsev, S. Sato, Y. Kozawa, J. Masajada, A. Popiołek-Masajada, M. Szatkowski, A. Chernykh, A. Bekshaev. Formation of an optical field with regular singular-skeleton structure by the double-phase-ramp converter. J. Opt., 22, 025603(2020).

    [28] L. Chen, Y. Zhou, M. Wu, M. Hong. Remote-mode microsphere nano-imaging: new boundaries for optical microscopes. Opto-Electron. Adv., 1, 170001(2018).

    [29] L. Chen, Y. Zhou, Y. Li, M. Hong. Microsphere enhanced optical imaging and patterning: from physics to applications. Appl. Phys. Rev., 6, 021304(2019).

    [30] B. S. Luk’yanchuk, Z. Wang, W. Song, M. Hong. Particle on surface: 3D-effects in dry laser cleaning. Appl. Phys. A, 79, 747-751(2004).

    [31] B. S. Luk’yanchuk, R. Paniagua-Domínguez, I. V. Minin, O. V. Minin, Z. Wang. Refractive index less than two: photonic nanojets yesterday, today and tomorrow [Invited]. Opt. Mater. Express, 7, 1820-1847(2017).

    [32] M. X. Wu, B. J. Huang, R. Chen, Y. Yang, J. F. Wu, R. Ji, X. D. Chen, M. H. Hong. Modulation of photonic jets generated by microspheres decorated with concentric rings. Opt. Express, 23, 20096-20103(2015).

    [33] M. Wu, R. Chen, J. Ling, Z. Chen, X. Chen, R. Ji, M. Hong. Creation of a longitudinally polarized photonic jet via an engineered microsphere. Opt. Lett., 42, 1444-1447(2017).

    [34] Y. Zhou, H. Gao, J. Teng, X. Luo, M. Hong. Orbital angular momentum generation via a spiral phase microsphere. Opt. Lett., 43, 34-37(2018).

    [35] Y. Zhou, R. Ji, J. Teng, M. Hong. Wavelength-tunable focusing via a Fresnel zone microsphere. Opt. Lett., 45, 852-855(2020).

    [36] Y. Zhou, R. Ji, J. Teng, M. Hong. Ultralong light focusing via negative axicon microsphere. Eng. Res. Express, 2, 015044(2020).

    [37] Y. Zhou, M. Hong. Formation of polarization-dependent optical vortex beams via an engineered microsphere. Opt. Express, 29, 11121-11131(2021).

    [38] V. N. Mahajan. Aberration Theory Made Simple(1991).

    [39] A. Mikš, J. Novák. Third-order aberration coefficients of a thick lens. Appl. Opt., 51, 7883-7886(2012).

    [40] M. Born, E. Wolf. Principles of Optics(1999).

    [41] Y. Zhang, H. An, D. Zhang, G. Cui, X. Ruan. Diffraction theory of high numerical aperture subwavelength circular binary phase Fresnel zone plate. Opt. Express, 22, 27425-27436(2014).

    [42] D. Barredo, V. Lienhard, P. Scholl, S. de Léséleuc, T. Boulier, A. Browaeys, T. Lahaye. Three-dimensional trapping of individual Rydberg atoms in ponderomotive bottle beam traps. Phys. Rev. Lett., 124, 023201(2020).

    Yan Zhou, Minghui Hong. Formation of a three-dimensional bottle beam via an engineered microsphere[J]. Photonics Research, 2021, 9(8): 1598
    Download Citation