• Chinese Optics Letters
  • Vol. 23, Issue 6, 061101 (2025)
Zhenli Li, Rongyi Lin, Min Lin*, Luping Du, and Xiaocong Yuan
Author Affiliations
  • Nanophotonics Research Center, Institute of Microscale Optoelectronics & State Key Laboratory of Radio Frequency Heterogeneous Integration, Shenzhen University, Shenzhen 518060, China
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    DOI: 10.3788/COL202523.061101 Cite this Article Set citation alerts
    Zhenli Li, Rongyi Lin, Min Lin, Luping Du, Xiaocong Yuan, "Scanning-less optical near-field characterization for structured light fields based on nonlinear effects," Chin. Opt. Lett. 23, 061101 (2025) Copy Citation Text show less
    References

    [1] E. A. Ash, G. Nicholls. Super-resolution aperture scanning microscope. Nature, 237, 510(1972).

    [2] K. Kurihara, H. Ohkawa, Y. Iwasaki et al. Fiber-optic conical microsensors for surface plasmon resonance using chemically etched single-mode fiber. Anal. Chim. Acta, 523, 165(2004).

    [3] S. Onishi, K. Matsuishi, J. Oi et al. Spatiotemporal control of femtosecond plasmon using plasmon response functions measured by near-field scanning optical microscopy (NSOM). Opt. Express, 21, 26631(2013).

    [4] Y.-C. Yong, Y.-Z. Wang, J.-J. Zhong. Nano-spectroscopic imaging of proteins with near-field scanning optical microscopy (NSOM). Curr. Opin. Biotechnol., 54, 106(2018).

    [5] C. Luo, X. Guo, H. Hu et al. Probing polaritons in 2D materials. Adv. Opt. Mater., 8, 1901416(2020).

    [6] D. A. Vanden Bout, J. Kerimo, D. A. Higgins et al. Near-field optical studies of thin-film mesostructured organic materials. Acc. Chem. Res., 30, 204(1997).

    [7] C. R. McNeill, H. Frohne, J. L. Holdsworth et al. Direct photocurrent mapping of organic solar cells using a near-field scanning optical microscope. Nano Lett., 4, 219(2004).

    [8] A. J. Das, R. Shivanna, K. S. Narayan. Photoconductive NSOM for mapping optoelectronic phases in nanostructures. Nanophotonics, 3, 19(2014).

    [9] S. Smith, N. C. R. Holme, B. Orr et al. Ultrafast measurement in GaAs thin films using NSOM. Ultramicroscopy, 71, 213(1998).

    [10] L. Baird, G. H. Ang, C. H. Low et al. Imaging minority carrier diffusion in GaN nanowires using near field optical microscopy. Physica B, 404, 4933(2009).

    [11] P.-K. Wei, Y.-C. Chen, H.-L. Kuo. Systematic variation of polymer jacketed fibres and the effects on tip etching dynamics. J. Microsc., 210, 334(2003).

    [12] J. Yang, J. Zhang, Z. Li et al. Fabrication of high-quality SNOM probes by pre-treating the fibres before chemical etching. J. Microsc., 228, 40(2007).

    [13] R. Niemann, N. S. Mueller, S. Wasserroth et al. Spectroscopic and interferometric sum-frequency imaging of strongly coupled phonon polaritons in SiC metasurfaces. Adv. Mater., 36, 2312507(2024).

    [14] K. Frischwasser, K. Cohen, S. Tsesses et al. Nonlinear forced response of plasmonic nanostructures. Phys. Rev. Lett., 128, 103901(2022).

    [15] L. Du, A. Yang, A. V. Zayats et al. Deep-subwavelength features of photonic Skyrmions in a confined electromagnetic field with orbital angular momentum. Nat. Phys., 15, 650(2019).

    [16] S. Tsesses, E. Ostrovsky, K. Cohen et al. Optical Skyrmion lattice in evanescent electromagnetic fields. Science, 361, 993(2018).

    [17] Q. Zhang, Z. Xie, P. Shi et al. Optical topological lattices of Bloch-type Skyrmion and Meron topologies. Photonics Res., 10, 947(2022).

    [18] A. Ghosh, S. Yang, Y. Dai et al. A topological lattice of plasmonic Merons. Appl. Phys. Rev., 8, 041413(2021).

    [19] Y. Shen, B. Yu, H. Wu et al. “Topological transformation and free-space transport of photonic hopfions. Adv. Photonics, 5, 015001(2023).

    [20] H. Wang, S. Fan. Photonic spin hopfions and monopole loops. Phys. Rev. Lett., 131, 263801(2023).

    [21] P. Ornelas, I. Nape, R. de Mello Koch et al. Non-local Skyrmions as topologically resilient quantum entangled states of light. Nat. Photonics, 18, 258(2024).

    [22] A. Yang, X. Lei, P. Shi et al. Spin-manipulated photonic Skyrmion-pair for pico-metric displacement sensing. Adv. Sci., 10, 2205249(2023).

    [23] X. Lei, L. Du, X. Yuan et al. Optical spin–orbit coupling in the presence of magnetization: photonic Skyrmion interaction with magnetic domains. Nanophotonics, 10, 3667(2021).

    [24] H. Hu, A. K. Pal, A. Berestennikov et al. Surface-enhanced Raman scattering in BIC-driven semiconductor metasurfaces. Adv. Opt. Mater., 12, 2302812(2024).

    [25] K. He, Q. Niu, Y. Xie et al. Bound state in the continuum (BIC) excited by the metasurface breaking in-plane symmetry and quasi-BIC for terahertz sensing. Appl. Phys. Lett., 124, 231702(2024).

    [26] Á. R. Echarri, J. D. Cox, F. Iyikanat et al. Nonlinear plasmonic response in atomically thin metal films. Nanophotonics, 10, 4149(2021).

    [27] K. Frischwasser, K. Cohen, J. Kher-Alden et al. Real-time sub-wavelength imaging of surface waves with nonlinear near-field optical microscopy. Nat. Photonics, 15, 442(2021).

    [28] T. J. Davis, D. Janoschka, P. Dreher et al. Ultrafast vector imaging of plasmonic skyrmion dynamics with deep subwavelength resolution. Science, 368, eaba6415(2020).

    [29] C. C. Li, P. Shi, L. P. Du et al. Mapping the near-field spin angular momenta in the structured surface plasmon polariton field. Nanoscale, 12, 13674(2020).

    [30] C. Bin, L. Kelbauskas, S. Chan et al. Rotation of single live mammalian cells using dynamic holographic optical tweezers. Opt. Lasers Eng., 92, 70(2017).

    [31] N. B. Vilas, P. Robichaud, C. Hallas et al. An optical tweezer array of ultracold polyatomic molecules. Nature, 628, 282(2024).

    [32] S. S. Kou, G. Yuan, Q. Wang et al. On-chip photonic Fourier transform with surface plasmon polaritons. Light Sci. Appl., 5, e16034(2016).

    [33] X. Lei, A. Yang, P. Shi et al. Photonic spin lattices: symmetry constraints for Skyrmion and Meron topologies. Phys. Rev. Lett., 127, 237403(2021).

    [34] M. Lin, Q. Liu, H. Duan et al. Wavelength-tuned transformation between photonic Skyrmion and Meron spin textures. Appl. Phys. Rev., 11, 021408(2024).

    Zhenli Li, Rongyi Lin, Min Lin, Luping Du, Xiaocong Yuan, "Scanning-less optical near-field characterization for structured light fields based on nonlinear effects," Chin. Opt. Lett. 23, 061101 (2025)
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