• Photonics Research
  • Vol. 1, Issue 3, 136 (2013)
Han Lin, Qiming Zhang, and and Min Gu*
Author Affiliations
  • Centre for Micro-Photonics, Faculty of Engineering and Industrial Sciences, Swinburne University of Technology, Hawthorn VIC 3122, Australia
  • show less
    DOI: 10.1364/PRJ.1.000136 Cite this Article Set citation alerts
    Han Lin, Qiming Zhang, and Min Gu. Three-dimensional nanoconfinement of broadband optical energy in all-dielectric photonic nanostructure[J]. Photonics Research, 2013, 1(3): 136 Copy Citation Text show less
    References

    [1] M. Gu. Advanced Optical Imaging Theory(2000).

    [2] K. A. Serrels, E. Ramsay, R. J. Warburton, D. T. Reid. Nanoscale optical microscopy in the vectorial focusing regime. Nat. Photonics, 2, 311-314(2008).

    [3] S. W. Hell, J. Wichmann. Breaking the diffraction resolution limit by stimulated emission: stimulated-emission-depletion fluorescence microscopy. Opt. Lett., 19, 780-782(1994).

    [4] Z. Liu, J. M. Steele, W. Srituravanich, Y. Pikus, C. Sun, X. Zhang. Focusing surface plasmons with a plasmonic lens. Nano Lett., 5, 1726-1729(2005).

    [5] W. Srituravanich, L. Pan, Y. Wang, C. Sun, D. B. Bogy, X. Zhang. Flying plasmonic lens in the near field for high-speed nanolithography. Nat. Nanotechnol., 3, 733-737(2008).

    [6] W. Chen, D. C. Abeysinghe, R. L. Nelson, Q. Zhan. Plasmonic lens made of multiple concentric metallic rings under radially polarized illumination. Nano Lett., 9, 4320-4325(2009).

    [7] H. Shi, L. J. Guo. Design of plasmonic near field plate at optical frequency. Appl. Phys. Lett., 96, 141107(2010).

    [8] L. Pan, Y. Park, Y. Xiong, E. Ulin-Avila, Y. Wang, L. Zeng, S. Xiong, J. Rho, C. Sun, D. B. Bogy, X. Zhang. Maskless plasmonic lithography at 22 nm resolution. Sci. Rep., 1, 175(2011).

    [9] D. K. Gramotnev, S. I. Bozhevolnyi. Plasmonics beyond the diffraction limit. Nat. Photonics, 4, 83-91(2010).

    [10] D. F. P. Pile, D. K. Gramotnev. Adiabatic and nonadiabatic nanofocusing of plasmons by tapered gap plasmon waveguides. Appl. Phys. Lett., 89, 041111(2006).

    [11] H. Choi, D. F. P. Pile, S. Nam, G. Bartal, X. Zhang. Compressing surface plasmons for nano-scale optical focusing. Opt. Express, 17, 7519-7524(2009).

    [12] H. Choo, M. Stafarroni, T. J. Seok, J. Bokor, M. Wu, P. J. Schuck, S. Cabrini, E. Yablonovitch. Three-dimensional optical transformer—highly efficient nanofocusing device. Conference on Lasers and Electro-Optics and Quantum Electronics and Laser Science Conference(2010).

    [13] M. Schnell, P. Alonso-González, L. Arzubiaga, F. Casanova, L. E. Hueso, A. Chuvilin, R. Hillenbrand. Nanofocusing of mid-infrared energy with tapered transmission lines. Nat. Photonics, 5, 283-287(2011).

    [14] P. Berini. Figures of merit for surface plasmon waveguides. Opt. Express, 14, 13030-13042(2006).

    [15] S. Aksu, A. A. Yanik, R. Adato, A. Artar, M. Huang, H. Altug. High-throughput nanofabrication of infrared plasmonic nanoantenna arrays for vibrational nanospectroscopy. Nano Lett., 10, 2511-2518(2010).

    [16] T. Ohta. Phase-change optical memory promotes the DVD optical disk. J. Optoelectron. Adv. Mater., 3, 609-626(2001).

    [17] A. Zakery, S. R. Elliott. Optical properties and applications of chalcogenide glasses: a review. J. Non-Cryst. Solids, 330, 1-12(2003).

    [18] Q. Zhang, H. Lin, B. Jia, L. Xu, M. Gu. Nanogratings and nanoholes fabricated by direct femtosecond laser writing in chalcogenide glasses. Opt. Express, 18, 6885-6890(2010).

    [19]

    [20] V. R. Almeida, Q. Xu, C. A. Barrios, M. Lipson. Guiding and confining light in void nanostructure. Opt. Lett., 29, 1209-1211(2004).

    [21] J. T. Robinson, C. Manolatou, L. Chen, M. Lipson. Ultrasmall mode volumes in dielectric optical microcavities. Phys. Rev. Lett., 95, 143901(2005).

    [22]

    [23] E. D. Mentovich, B. Belgorodsky, I. Kalifa, H. Cohen, S. Richter. Large-scale fabrication of 4-nm-channel vertical protein-based ambipolar transistors. Nano Lett., 9, 1296-1300(2009).

    [24] Z. Gan, Y. Cao, R. A. Evans, M. Gu. Three-dimensional deep sub-diffraction optical beam lithography with 9 nm feature size. Nat. Commun., 4, 2061(2013).

    [25] E. J. Sánchez, L. Novotny, X. Sunney Xie. Near-field fluorescence microscopy based on two-photon excitation with metal tips. Phys. Rev. Lett., 82, 4014-4017(1999).

    CLP Journals

    [1] Jin Hou, Chunyong Yang, Xiaohang Li, Zhenzhou Cao, Shaoping Chen. Enhanced complete photonic bandgap in a moderate refractive index contrast chalcogenide-air system with connected-annular-rods photonic crystals[J]. Photonics Research, 2018, 6(4): 282

    Han Lin, Qiming Zhang, and Min Gu. Three-dimensional nanoconfinement of broadband optical energy in all-dielectric photonic nanostructure[J]. Photonics Research, 2013, 1(3): 136
    Download Citation