• Photonics Research
  • Vol. 10, Issue 1, 166 (2022)
Xi Xie1, Xianyou Wang1, Changjun Min1、2、*, Haixiang Ma1, Yunqi Yuan1, Zhangyu Zhou1, Yuquan Zhang1, Jing Bu1, and Xiaocong Yuan1、3、*
Author Affiliations
  • 1Nanophotonics Research Center, Shenzhen Key Laboratory of Micro-Scale Optical Information Technology, Shenzhen University, Shenzhen 518060, China
  • 2e-mail: cjmin@szu.edu.cn
  • 3e-mail: xcyuan@szu.edu.cn
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    DOI: 10.1364/PRJ.444341 Cite this Article Set citation alerts
    Xi Xie, Xianyou Wang, Changjun Min, Haixiang Ma, Yunqi Yuan, Zhangyu Zhou, Yuquan Zhang, Jing Bu, Xiaocong Yuan. Single-particle trapping and dynamic manipulation with holographic optical surface-wave tweezers[J]. Photonics Research, 2022, 10(1): 166 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] J. R. Moffitt, Y. R. Chemla, S. B. Smith, C. Bustamante. Recent advances in optical tweezers. Annu. Rev. Biochem., 77, 205-228(2008).

    [3] W. Ding, T. Zhu, L. Zhou, C. Qiu. Photonic tractor beams: a review. Adv. Photon., 1, 024001(2019).

    [4] T. Li, S. Kheifets, M. G. Raizen. Millikelvin cooling of an optically trapped microsphere in vacuum. Nat. Phys., 7, 527-530(2011).

    [5] D. V. Petrov. Raman spectroscopy of optically trapped particles. J. Opt. A, 9, S139-S156(2007).

    [6] O. Romero-Isart, A. C. Pflanzer, F. Blaser, R. Kaltenbaek, N. Kiesel, M. Aspelmeyer, J. I. Cirac. Large quantum superpositions and interference of massive nanometer-sized objects. Phys. Rev. Lett., 107, 020405(2011).

    [7] A. D. Mehta, M. Rief, J. A. Spudich, D. A. Smith, R. M. Simmons. Single-molecule biomechanics with optical methods. Science, 283, 1689-1695(1999).

    [8] J. Zhou, A. I. Chizhik, S. Chu, D. Jin. Single-particle spectroscopy for functional nanomaterials. Nature, 579, 41-50(2020).

    [9] S. Stoll, J. Delon, T. M. Brotz, R. N. Germain. Dynamic imaging of T cell-dendritic cell interactions in lymph nodes. Science, 296, 1873-1876(2002).

    [10] Q. Zhao, H. W. Wang, P. P. Yu, S. H. Zhang, J. H. Zhou, Y. M. Li, L. Gong. Trapping and manipulation of single cells in crowded environments. Front. Bioeng. Biotechnol., 8, 422(2020).

    [11] S. Kawata, T. Sugiura. Movement of micrometer-sized particles in the evanescent field of a laser beam. Opt. Lett., 17, 772-774(1992).

    [12] D. Ganic, X. Gan, M. Gu. Trapping force and optical lifting under focused evanescent wave illumination. Opt. Express, 12, 5533-5538(2004).

    [13] L. Kong, C. Lee, C. M. Earhart, B. Cordovez, J. W. Chan. A nanotweezer system for evanescent wave excited surface enhanced Raman spectroscopy (SERS) of single nanoparticles. Opt. Express, 23, 6793-6802(2015).

    [14] Y. F. Xiang, X. Tang, C. J. Min, G. H. Rui, Y. Kuai, F. Y. Lu, P. Wang, H. Ming, Q. W. Zhan, X. C. Yuan, J. R. Lakowicz, D. G. Zhang. Optical trapping with focused surface waves. Ann. Phys., 532, 1900497(2020).

    [15] Y. Zhang, C. Min, X. Dou, X. Wang, H. P. Urbach, M. G. Somekh, X. Yuan. Plasmonic tweezers: for nanoscale optical trapping and beyond. Light Sci. Appl., 10, 59(2021).

    [16] C. Min, Z. Shen, J. Shen, Y. Zhang, H. Fang, G. Yuan, L. Du, S. Zhu, T. Lei, X. Yuan. Focused plasmonic trapping of metallic particles. Nat. Commun., 4, 2891(2013).

    [17] Y. Zhang, J. Shen, Z. Xie, X. Dou, C. Min, T. Lei, J. Liu, S. Zhu, X. Yuan. Dynamic plasmonic nano-traps for single molecule surface-enhanced Raman scattering. Nanoscale, 9, 10694-10700(2017).

    [18] X. Wang, Y. Dai, Y. Zhang, C. Min, X. Yuan. Plasmonic manipulation of targeted metallic particles by polarization-sensitive metalens. ACS Photon., 5, 2945-2950(2018).

    [19] P. P. Patra, R. Chikkaraddy, R. P. N. Tripathi, A. Dasgupta, G. V. Pavan Kumar. Plasmofluidic single-molecule surface enhanced Raman scattering from dynamic assembly of plasmonic nanoparticles. Nat. Commun., 5, 4357(2014).

    [20] C. Zhan, G. Wang, J. Yi, J. Wei, Z. Li, Z. Chen, J. Shi, Y. Yang, W. Hong, Z. Tian. Single-molecule plasmonic optical trapping. Matter, 3, 1350-1360(2020).

    [21] S. J. Yoon, J. Lee, S. Han, C. K. Kim, C. W. Ahn, M. K. Kim, Y. H. Lee. Non-fluorescent nanoscopic monitoring of a single trapped nanoparticle via nonlinear point sources. Nat. Commun., 9, 2218(2018).

    [22] M. Belkin, S. H. Chao, M. P. Jonsson, C. Dekker, A. Aksimentiev. Plasmonic nanopores for trapping, controlling displacement, and sequencing of DNA. ACS Nano, 9, 10598-10611(2015).

    [23] D. V. Verschueren, S. Pud, X. Shi, L. De Angelis, L. Kuipers, C. Dekker. Label-free optical detection of DNA translocations through plasmonic nanopores. ACS Nano, 13, 61-70(2019).

    [24] Y. Xiang, X. Tang, Y. Fu, F. Lu, Y. Kuai, C. Min, J. Chen, P. Wang, J. R. Lakowicz, X. Yuan, D. Zhang. Trapping metallic particles using focused Bloch surface waves. Nanoscale, 12, 1688-1696(2020).

    [25] S. Lin, K. B. Crozier. Trapping-assisted sensing of particles and proteins using on-chip optical microcavities. ACS Nano, 7, 1725-1730(2013).

    [26] Y. Yang, Y. Ren, M. Chen, Y. Arita, C. Rosales-Guzmán. Optical trapping with structured light: a review. Adv. Photon., 3, 034001(2021).

    [27] C. Zhang, C. Min, X. C. Yuan. Shaping perfect optical vortex with amplitude modulated using a digital micro-mirror device. Opt. Commun., 381, 292-295(2016).

    [28] D. J. Griffiths. Introduction to Electrodynamics, 351-356(1998).

    [29] R. W. Christy. Optical constants of the noble metals. Phys. Rev. B, 6, 4379(1972).

    [30] L. Novotny, R. X. Bian, X. S. Xie. Theory of nanometric optical tweezers. Phys. Rev. Lett., 79, 645-648(1997).

    [31] H. Zhang, K. K. Liu. Optical tweezers for single cells. J. R. Soc. Interface, 5, 671-690(2008).

    [32] Z. Shen, Z. J. Hu, G. H. Yuan, C. J. Min, H. Fang, X.-C. Yuan. Visualizing orbital angular momentum of plasmonic vortices. Opt. Lett., 37, 4627-4629(2012).

    [33] M. P. MacDonald, L. Paterson, K. Volke-Sepulveda, J. Arlt, W. Sibbett, K. Dholakia. Creation and manipulation of three-dimensional optically trapped structures. Science, 296, 1101-1103(2002).

    [34] J. E. Curtis, D. G. Grier. Modulated optical vortices. Opt. Lett., 28, 872-874(2003).

    [35] Y. Yu, T. Xiao, Y. Wu, W. Li, Q. Zeng, L. Long, Z. Li. Roadmap for single-molecule surface-enhanced Raman spectroscopy. Adv. Photon., 2, 014002(2020).

    [36] L. S. Madsen, M. Waleed, C. A. Casacio, A. Terrasson, A. B. Stilgoe, M. A. Taylor, W. P. Bowen. Ultrafast viscosity measurement with ballistic optical tweezers. Nat. Photonics, 15, 386-392(2021).

    [37] M. Lee, K. Kim, J. Oh, Y. Park. Isotropically resolved label-free tomographic imaging based on tomographic moulds for optical trapping. Light Sci. Appl., 10, 102(2021).

    [38] Y. Zhang, X. Wu, C. Min, S. Zhu, H. P. Urbach, X. Yuan. Engineered tumor cell apoptosis monitoring method based on dynamic laser tweezers. BioMed. Res. Int., 2014, 279408(2014).

    [39] X. Wu, Y. Zhang, C. Min, S. Zhu, J. Feng, X. C. Yuan. Dynamic optical tweezers based assay for monitoring early drug resistance. Laser Phys. Lett., 10, 065604(2013).

    [40] H. Wu, J. V. Volponi, A. E. Oliver, A. N. Parikh, B. A. Simmons, S. Singh. In vivo lipidomics using single-cell Raman spectroscopy. Proc. Natl. Acad. Sci. USA, 108, 3809-3814(2011).

    [41] M. Li, J. Xu, M. Romero-Gonzalez, S. A. Banwart, W. E. Huang. Single cell Raman spectroscopy for cell sorting and imaging. Curr. Opin. Biotechnol., 23, 56-63(2012).

    [42] L. N. Ng, M. N. Zervas, J. S. Wilkinson, B. J. Luff. Manipulation of colloidal gold nanoparticles in the evanescent field of a channel waveguide. Appl. Phys. Lett., 76, 1993-1995(2000).

    [43] J. P. Hole, J. S. Wilkinson, K. Grujic, O. G. Hellesø. Velocity distribution of gold nanoparticles trapped on an optical waveguide. Opt. Express, 13, 3896-3901(2005).

    [44] P. R. Huft, J. D. Kolbow, J. T. Thweatt, N. C. Lindquist. Holographic plasmonic nanotweezers for dynamic trapping and manipulation. Nano Lett., 17, 7920-7925(2017).

    [45] L. Lin, M. Wang, X. Peng, E. N. Lissek, Z. Mao, L. Scarabelli, E. Adkins, S. Coskun, H. E. Unalan, B. A. Korgel, L. M. Liz-Marzan, E. L. Florin, Y. Zheng. Opto-thermoelectric nanotweezers. Nat. Photonics, 12, 195-201(2018).

    [46] X. Wang, Y. Zhang, Y. Dai, C. Min, X. Yuan. Enhancing plasmonic trapping with a perfect radially polarized beam. Photon. Res., 6, 847-852(2018).

    [47] B. Ciraulo, J. Garcia-Guirado, I. de Miguel, J. O. Arroyo, R. Quidant. Long-range optofluidic control with plasmon heating. Nat. Commun., 12, 2001(2021).

    [48] Q. Jiang, B. Rogez, J. B. Claude, G. Baffou, J. Wenger. Quantifying the role of the surfactant and the thermophoretic force in plasmonic nano-optical trapping. Nano Lett., 20, 8811-8817(2020).

    Xi Xie, Xianyou Wang, Changjun Min, Haixiang Ma, Yunqi Yuan, Zhangyu Zhou, Yuquan Zhang, Jing Bu, Xiaocong Yuan. Single-particle trapping and dynamic manipulation with holographic optical surface-wave tweezers[J]. Photonics Research, 2022, 10(1): 166
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