STM-based electrical generation of surface plasmons enhanced by nanoantenna

被引:0
|
作者
Bigourdan, F. [1 ]
Hugonin, J-P. [2 ]
Marquier, F. [2 ]
Sauvan, C. [2 ]
Greffet, J-J. [2 ]
机构
[1] Univ Montpellier, Lab Charles Coulomb, Pl Eugene Bataillon, F-34095 Montpellier 5, France
[2] Lab Charles Fabry, 2 Ave Augustin Fresnel, F-91127 Palaiseau, France
来源
2016 18TH INTERNATIONAL CONFERENCE ON TRANSPARENT OPTICAL NETWORKS (ICTON) | 2016年
关键词
Plasmonics; Inelastic Electronic tunneling; Electrical Source; Optical Antenna; LIGHT-EMISSION;
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Surface plasmons polaritons (SPP) are charge-density surface waves, confined at the interface between a metal and an insulator. This confinement property makes SPPs good candidates for optoelectronic devices miniaturization. Recently, several groups have used a scanning tunneling microscope (STM) tip [1], [2] to generate surface plasmons via inelastic tunneling. This elegant technique suggests the possibility to integrate an electrical SPP source directly into the SPP circuit. Yet, the efficiency is very low and the radiation spectrum is very large. We introduce a resonant plasmonic nanoantenna to circumvent these issues. Our study predicts an enhancement by more than two orders of magnitude of the electrical power conversion to SPP as well as a tunable narrow emission spectrum. Our analysis allows one to understand recent experiments from other groups demonstrating such an enhancement [3], [4], [5]. Some of those results were recently published in [6].
引用
收藏
页数:3
相关论文
共 45 条
  • [1] Nanoantenna for Electrical Generation of Surface Plasmon Polaritons
    Bigourdan, Florian
    Hugonin, Jean-Paul
    Marquier, Francois
    Sauvan, Christophe
    Greffet, Jean-Jacques
    PHYSICAL REVIEW LETTERS, 2016, 116 (10)
  • [2] Electrical Excitation of Surface Plasmons
    Bharadwaj, Palash
    Bouhelier, Alexandre
    Novotny, Lukas
    PHYSICAL REVIEW LETTERS, 2011, 106 (22)
  • [3] Generation of surface plasmons with compact devices
    Baron, A.
    Lalanne, P.
    Gan, C. H.
    Hugonin, J. P.
    INTEGRATED OPTICS: DEVICES, MATERIALS, AND TECHNOLOGIES XVII, 2013, 8627
  • [4] Effects of corner radius on periodic nanoantenna for surface-enhanced Raman spectroscopy
    Chao, Bo-Kai
    Lin, Shih-Che
    Nien, Wei
    Li, Jia-Han
    Hsueh, Chun-Hway
    JOURNAL OF OPTICS, 2015, 17 (12)
  • [5] Nanoscale Electrical Excitation of Surface Plasmon Polaritons with a Nanoantenna Tunneling Junction
    Pommier, Delphine
    Hufschmitt, Zeïlie
    Zhang, Cheng
    Lai, Yunhe
    Dujardin, Geïrald
    Le Moal, Eric
    Sauvan, Christophe
    Greffet, Jean-Jacques
    Wang, Jianfang
    Boer-Duchemin, Elizabeth
    ACS PHOTONICS, 2023, 10 (08) : 2641 - 2649
  • [6] Metal-Dielectric Hybrid Dimer Nanoantenna: Coupling between Surface Plasmons and Dielectric Resonances for Fluorescence Enhancement
    Sun, Song
    Li, Mo
    Du, Qingguo
    Png, Ching Eng
    Bai, Ping
    JOURNAL OF PHYSICAL CHEMISTRY C, 2017, 121 (23) : 12871 - 12884
  • [7] Fractal Tree Plasmonic Nanoantenna Array for Multispectral Surface-Enhanced Spectroscopy
    Hegde, Ravi S.
    2015 WORKSHOP ON RECENT ADVANCES IN PHOTONICS (WRAP), 2015,
  • [8] Classical electricity analysis of the coupling mechanisms between admolecule vibrations and localized surface plasmons in STM for vibration detectability
    Inaoka, Takeshi
    Uehara, Yoich
    JOURNAL OF APPLIED PHYSICS, 2017, 122 (08)
  • [9] Enhanced energy transfer via graphene-coated wire surface plasmons
    Olivo, Julieta
    Cuevas, Mauro
    JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER, 2019, 239
  • [10] Surface plasmon-enhanced UV-emission from ZnO by aluminum bowtie nanoantenna arrays
    Zhang, Heng
    Su, Xi
    Wu, Hao
    Liu, Chang
    JOURNAL OF ALLOYS AND COMPOUNDS, 2019, 772 : 460 - 464