• Chinese Optics Letters
  • Vol. 21, Issue 1, 013601 (2023)
Tao Zhuang1, Haifeng Hu1、2、3、*, and Qiwen Zhan1、2、3、**
Author Affiliations
  • 1School of Optical-Electrical and Computer Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China
  • 2Zhangjiang Laboratory, Shanghai 201204, China
  • 3Shanghai Key Laboratory of Modern Optical System, University of Shanghai for Science and Technology, Shanghai 200093, China
  • show less
    DOI: 10.3788/COL202321.013601 Cite this Article Set citation alerts
    Tao Zhuang, Haifeng Hu, Qiwen Zhan. Generation of tunable superchiral spot in metal-insulator-metal waveguide[J]. Chinese Optics Letters, 2023, 21(1): 013601 Copy Citation Text show less
    References

    [1] L. D. Barron. Molecular Light Scattering and Optical Activity(2004).

    [2] Y. Inoue, V. Ramamurthy. Chiral Photochemistry(2004).

    [3] J. Mun, M. Kim, Y. Yang, T. Badloe, J. Ni, Y. Chen, C. W. Qiu, J. Rho. Electromagnetic chirality: from fundamentals to nontraditional chiroptical phenomena. Light Sci. Appl., 9, 139(2020).

    [4] Y. Tang, A. E. Cohen. Optical chirality and its interaction with matter. Phys. Rev. Lett., 104, 163901(2010).

    [5] Y. Tang, A. E. Cohen. Enhanced enantioselectivity in excitation of chiral molecules by superchiral light. Science, 332, 333(2011).

    [6] K. C. van Kruining, R. P. Cameron, J. B. Götte. Super- positions of up to six plane waves without electric-field interference. Optica, 5, 1091(2018).

    [7] N. Yang, A. E. Cohen. Local geometry of electromagnetic fields and its role in molecular multipole transitions. J. Phys. Chem. B, 115, 5304(2011).

    [8] C. Rosales-Guzmán, K. Volke-Sepulveda, J. P. Torres. Light with enhanced optical chirality. Opt. Lett., 37, 3486(2012).

    [9] H. Hu, Q. Gan, Q. Zhan. Generation of a nondiffracting superchiral optical needle for circular dichroism imaging of sparse subdiffraction objects. Phys. Rev. Lett., 122, 223901(2019).

    [10] A. Vazquez-Guardado, D. Chanda. Superchiral light generation on degenerate achiral surfaces. Phys. Rev. Lett., 120, 137601(2018).

    [11] K. Yao, Y. M. Liu. Enhancing circular dichroism by chiral hotspots in silicon nanocube dimers. Nanoscale, 10, 8779(2018).

    [12] G. Rui, H. Hu, Q. Zhan, Q. Gan. Symmetric meta-absorber-induced superchirality. Adv. Opt. Mater., 7, 1901038(2019).

    [13] J. Mun, J. Rho. Importance of higher-order multipole transitions on chiral nearfield interactions. Nanophotonics, 8, 941(2019).

    [14] J. Mun, S. So, J. Jang, J. Rho. Describing meta-atoms using the exact higher-order polarizability tensors. ACS Photonics, 7, 1153(2020).

    [15] M. Kim, J. Rho. Plasmonic-enhanced chirality examined by generalized wavenumber eigenvalue simulation. Opt. Express, 26, 014051(2018).

    [16] J. Mun, J. Rho. Surface-enhanced circular dichroism by multipolar radiative coupling. Opt. Lett., 43, 002856(2018).

    [17] H. Hu, Q. Gan, Q. Zhan. Achieving maximum scattering circular dichroism through the excitation of anapole states within chiral Mie nanospheres. Phys. Rev. B, 105, 245412(2022).

    [18] G. R. Guzman, K. V. Sepulveda, J. P. Torres. Light with enhanced optical chirality. Opt. Lett., 37, 3486(2012).

    [19] H. Wang, J. Zheng, Y. Fu, C. Wang, X. Huang, Z. Ye, L. Qian. Multichannel high extinction ratio polarized beam splitters based on metasurfaces. Chin. Opt. Lett., 17, 052303(2019).

    [20] S. A. Maier. Plasmonics: Fundamentals and Applications(2007).

    [21] K. Youngworth, T. Brown. Focusing of high numerical aperture cylindrical-vector beams. Opt. Express, 7, 77(2000).

    [22] J. Kim, Y. Wang, X. Zhang. Calculation of vectorial diffraction in optical systems. J. Opt. Soc. Am. A, 35, 526(2018).

    [23] Q. Zhan. Cylindrical vector beams: from mathematical concepts to applications. Adv. Opt. Photonics, 1, 1(2009).

    [24] C. L. Mitsas, D. I. Siapkas. Generalized matrix method for analysis of coherent and incoherent reflectance and transmittance of multilayer structures with rough surfaces, interfaces, and finite substrates. Appl. Opt., 34, 1678(1995).

    [25] J. E. Vázquez-Lozano, A. Martínez. Optical chirality in dispersive and lossy media. Phys. Rev. Lett., 121, 043901(2018).

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

    [27] S. Lee, S. J. Yoo, Q. H. Park. Microscopic origin of surface-enhanced circular dichroism. ACS Photonics, 4, 2047(2017).

    Tao Zhuang, Haifeng Hu, Qiwen Zhan. Generation of tunable superchiral spot in metal-insulator-metal waveguide[J]. Chinese Optics Letters, 2023, 21(1): 013601
    Download Citation