Optical Properties of Silver and Gold Tetrahedral Nanopyramid Arrays Prepared by Nanosphere Lithography

被引:90
作者
Tabatabaei, Mohammadali [1 ,2 ]
Sangar, Alexandre [3 ,4 ]
Kazemi-Zanjani, Nastaran [1 ,2 ]
Torchio, Philippe [3 ,4 ]
Merlen, Alexandre [3 ,4 ]
Lagugne-Labarthet, Francois [1 ,2 ]
机构
[1] Univ Western Ontario, Dept Chem, London, ON N6A 5B7, Canada
[2] Univ Western Ontario, Ctr Adv Mat & Biomat, London, ON N6A 5B7, Canada
[3] Univ Aix Marseille, Inst Mat & Nanomat Provence UMR 7334, Marseille, France
[4] Univ Sud Toulon Var, Toulon, France
关键词
RAMAN; OPTIMIZATION; ENHANCEMENT; PLASMONICS; NANOSCALE; LIGHT;
D O I
10.1021/jp405125c
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Tetrahedral nanopyramids made of silver and gold over ITO/glass surfaces are fabricated. Our protocol is based on nanosphere lithography (NSL) with the deposition of thicker metal layers. After removing the microspheres used in the NSL process, an array of metallic tetrahedral nanostructures of similar to 350-400 nm height is formed. The reported procedure avoids the use of any stabilizing surfactant molecules that are generally necessary to segregate the individual particles onto surfaces. We focus here on the optical and the physical properties of these plasmonic surfaces using near-field spectroscopy in conjunction with finite difference time domain (FDTD) modeling of the electric field. Remarkably, FDTD shows that the localized surface plasmon resonance is confined in the plane formed by the edges of two facing pyramids that is parallel to the polarization of the impinging excitation laser. The variable gap between the edges of two adjacent pyramids shows a broader localized surface plasmon and a larger specific surface as opposed to the usual nanotriangle array. Localized enhancement of the electric field is experimentally investigated by coating the plasmonic surface with a thin film of photosensitive azopolymer onto the surface of the nanopyramids. Upon irradiation, the deformation of the surface topography is visualized by atomic force microscopy and suggests the potentiality of these 3D nanopyramids for near-field enhancement. This last feature is clearly confirmed by surface-enhanced Raman scattering measurement with 4-nitrothiophenol molecules deposited on the pyramid platforms. The potentiality of such 3D nanostructures in plasmonics and surface spectroscopy is thus clearly demonstrated.
引用
收藏
页码:14778 / 14786
页数:9
相关论文
共 44 条
  • [1] Angle insensitive enhancement of organic solar cells using metallic gratings
    Abass, Aimi
    Shen, Honghui
    Bienstman, Peter
    Maes, Bjorn
    [J]. JOURNAL OF APPLIED PHYSICS, 2011, 109 (02)
  • [2] Single Molecule Directivity Enhanced Raman Scattering using Nanoantennas
    Ahmed, Aftab
    Gordon, Reuven
    [J]. NANO LETTERS, 2012, 12 (05) : 2625 - 2630
  • [3] Alexander Troy A., 2005, Proceedings of the SPIE - The International Society for Optical Engineering, V6007, P600703, DOI 10.1117/12.630659
  • [4] Characterization of hotspots in a highly enhancing SERS substrate
    Asiala, Steven M.
    Schultz, Zachary D.
    [J]. ANALYST, 2011, 136 (21) : 4472 - 4479
  • [5] Atwater HA, 2010, NAT MATER, V9, P205, DOI [10.1038/nmat2629, 10.1038/NMAT2629]
  • [6] Broadband polarization-independent resonant light absorption using ultrathin plasmonic super absorbers
    Aydin, Koray
    Ferry, Vivian E.
    Briggs, Ryan M.
    Atwater, Harry A.
    [J]. NATURE COMMUNICATIONS, 2011, 2
  • [7] Plasmonics for future biosensors
    Brolo, Alexandre G.
    [J]. NATURE PHOTONICS, 2012, 6 (11) : 709 - 713
  • [8] APPLIED PHYSICS The Case for Plasmonics
    Brongersma, Mark L.
    Shalaev, Vladimir M.
    [J]. SCIENCE, 2010, 328 (5977) : 440 - 441
  • [9] Mechanism of Near-Field Raman Enhancement in One-Dimensional Systems
    Cancado, L. G.
    Jorio, A.
    Ismach, A.
    Joselevich, E.
    Hartschuh, A.
    Novotny, L.
    [J]. PHYSICAL REVIEW LETTERS, 2009, 103 (18)
  • [10] Nanopyramid surface plasmon resonance sensors
    Chung, Pei-Yu
    Lin, Tzung-Hua
    Schultz, Gregory
    Batich, Christopher
    Jiang, Peng
    [J]. APPLIED PHYSICS LETTERS, 2010, 96 (26)