Dipole-lattice nanoparticle resonances in finite arrays

被引:8
|
作者
Karimi, Vahid [1 ]
Babicheva, Viktoriia E. [1 ]
机构
[1] Univ New Mexico, Dept Elect & Comp Engn, Albuquerque, NM 87131 USA
关键词
PLASMONIC NANOSTRUCTURES; METASURFACES; GENERATION; SCATTERING; MODES;
D O I
10.1364/OE.491334
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
We investigate how the periodic lattices define the collective optical characteristics of the silicon and titanium nanoparticle arrays. We examine the effects of dipole lattice on the resonances of optical nanostructures, including those made of lossy materials, such as titanium. Our approach involves employing coupled-electric-magnetic-dipole calculations for finite-size arrays, as well as lattice sums for effectively infinite arrays. Our model shows that the convergence to the infinite-lattice limit is faster when the resonance is broad, requiring fewer array particles. Our approach differs from previous works by altering the lattice resonance through modifications in the array period. We observed that a higher number of nanoparticles is necessary to achieve convergence to the infinite-array limit. Additionally, we observe that the lattice resonances excited next to higher diffraction orders (such as second order) converge more quickly toward the ideal case of an infinite array than the lattice resonances related to the first diffraction order. This work reports on the significant advantages of using a periodic arrangement of lossy nanoparticles and the role of collective excitation in enhancing response from transition metals, such as titanium, nickel, tungsten, and so on. The periodic arrangement of nanoscatterers allows for the excitation of strong dipoles, boosting the performance of nanophotonic devices and sensors by improving the strength of localized resonances.
引用
收藏
页码:16857 / 16871
页数:15
相关论文
共 50 条
  • [41] Multipole Mie Resonances in MXene-Antenna Arrays
    Karimi, Vahid
    Babicheva, Viktoriia E.
    JOURNAL OF PHYSICAL CHEMISTRY C, 2023, 127 (36): : 17791 - 17801
  • [42] Lattice resonances of lossy transition metal and metalloid antennas
    Islam, Sakibul
    Babicheva, Viktoriia E.
    MRS ADVANCES, 2023, 8 (05) : 138 - 147
  • [43] Experimentally demonstrating plasmonic lattice mode in periodic Ag nanoparticle arrays on quartz trapezoidal pillars
    Huang, Xiaodan
    Lou, Chaogang
    Zhang, Hao
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2018, 51 (46)
  • [44] Excitonic surface lattice resonances
    Humphrey, A. D.
    Gentile, M. J.
    Barnes, W. L.
    JOURNAL OF OPTICS, 2016, 18 (08)
  • [45] Observation of Fano Resonances in All-Dielectric Nanoparticle Oligomers
    Chong, Katie E.
    Hopkins, Ben
    Staude, Isabelle
    Miroshnichenko, Andrey E.
    Dominguez, Jason
    Decker, Manuel
    Neshev, Dragomir N.
    Brener, Igal
    Kivshar, Yuri S.
    SMALL, 2014, 10 (10) : 1985 - 1990
  • [46] Decomposing Spin-Dipole Resonances by Complete Polarization Transfer Measurements
    Wakasa, T.
    Okamoto, M.
    Dozono, M.
    Hatanaka, K.
    Ichimura, M.
    Kuroita, S.
    Maeda, Y.
    Miyasako, H.
    Noro, T.
    Saito, T.
    Sakemi, Y.
    Yabe, T.
    Yako, K.
    INTERNATIONAL CONFERENCE ON RECENT TRENDS IN NUCLEAR PHYSICS-2012 (ICRTNP-2012), 2013, 1524 : 46 - 51
  • [47] Plasmonic metasurface superscatters driven by infrared surface lattice resonances
    Sadeghi, Seyed M.
    Roberts, Dustin T.
    Knox, Harrison
    Gutha, Rithvik R.
    APPLIED PHYSICS LETTERS, 2023, 123 (05)
  • [48] Tailoring Dispersion and Eigenfield Profiles of Plasmonic Surface Lattice Resonances
    Abass, Aimi
    Rodriguez, Said Rahimzadeh-Kalaleh
    Rivas, Jaime Gomez
    Maes, Bjorn
    ACS PHOTONICS, 2014, 1 (01): : 61 - 68
  • [49] Quality factor of plasmonic monopartite and bipartite surface lattice resonances
    Tse, Joshua T. Y.
    Ong, H. C.
    PHYSICAL REVIEW B, 2021, 104 (12)
  • [50] Diffraction-induced subradiant transverse-magnetic lattice plasmon modes in metal nanoparticle arrays
    Nikitin, Andrey G.
    APPLIED PHYSICS LETTERS, 2014, 104 (06)