Quenching, Plasmonic, and Radiative Decays in Nanogap Emitting Devices

被引:87
作者
Faggiani, Remi [1 ]
Yang, Jianji [1 ]
Lalanne, Philippe [1 ]
机构
[1] Univ Bordeaux, CNRS, IOGS, LP2N,UMR 5298, F-33400 Talence, France
来源
ACS PHOTONICS | 2015年 / 2卷 / 12期
关键词
optical nanoantennas; spontaneous emission; nanocavity; decay rates; modal formalism; quenching; ENHANCEMENT; ANTENNAS;
D O I
10.1021/acsphotonics.5b00424
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
By placing a quantum emitter in the mouths of nanogaps consisting of two metal nanoparticles nearly in contact, significant increases in emission rate are obtained. This mechanism is central in the design of modern plasmonic nanoantennas. However, due to the lack of general knowledge on the balance between the different decay rates in nanogaps (emission, quenching, and metal absorption), the design of light-emitting devices based on nanogaps is performed in a rather hazardous fashion; general intuitive recipes do not presently exist. With accurate and simple closed-form expressions for the quenching rate and the decay rate into gap plasmons, we provide a comprehensive analysis of nanogap light-emitting devices in the limit of small gap thickness. We disclose that the total decay rate in gap plasmons can largely overcome quenching for specifically selected metallic and insulator materials, regardless of the gap size. To confront these theoretical predictions, we provide a comprehensive numerical analysis of nanocube-type antennas in the limit of small gap thickness and further provide upper bounds for the photon-radiation efficiency.
引用
收藏
页码:1739 / 1744
页数:6
相关论文
共 31 条
  • [1] Optical antennas as nanoscale resonators
    Agio, Mario
    [J]. NANOSCALE, 2012, 4 (03) : 692 - 706
  • [2] Akselrod GM, 2014, NAT PHOTONICS, V8, P835, DOI [10.1038/NPHOTON.2014.228, 10.1038/nphoton.2014.228]
  • [3] Efficient and intuitive method for the analysis of light scattering by a resonant nanostructure
    Bai, Q.
    Perrin, M.
    Sauvan, C.
    Hugonin, J-P
    Lalanne, P.
    [J]. OPTICS EXPRESS, 2013, 21 (22): : 27371 - 27382
  • [4] General properties of slow-plasmon resonant nanostructures: nano-antennas and resonators
    Bozhevolnyi, Sergey I.
    Sondergaard, Thomas
    [J]. OPTICS EXPRESS, 2007, 15 (17) : 10869 - 10877
  • [5] Hertzian dipole radiating over a lossy Earth or sea: Some early and late 20th-century controversies
    Collin, RE
    [J]. IEEE ANTENNAS AND PROPAGATION MAGAZINE, 2004, 46 (02) : 64 - 79
  • [6] Optical antenna enhanced spontaneous emission
    Eggleston, Michael S.
    Messer, Kevin
    Zhang, Liming
    Yablonovitch, Eli
    Wu, Ming C.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2015, 112 (06) : 1704 - 1709
  • [7] Collection and Concentration of Light by Touching Spheres: A Transformation Optics Approach
    Fernandez-Dominguez, A. I.
    Maier, S. A.
    Pendry, J. B.
    [J]. PHYSICAL REVIEW LETTERS, 2010, 105 (26)
  • [8] ELECTROMAGNETIC-INTERACTIONS OF MOLECULES WITH METAL-SURFACES
    FORD, GW
    WEBER, WH
    [J]. PHYSICS REPORTS-REVIEW SECTION OF PHYSICS LETTERS, 1984, 113 (04): : 195 - 287
  • [9] Proposal for Compact Solid-State III-V Single-Plasmon Sources
    Gan, C. H.
    Hugonin, J. P.
    Lalanne, P.
    [J]. PHYSICAL REVIEW X, 2012, 2 (02):
  • [10] Plasmons in Strongly Coupled Metallic Nanostructures
    Halas, Naomi J.
    Lal, Surbhi
    Chang, Wei-Shun
    Link, Stephan
    Nordlander, Peter
    [J]. CHEMICAL REVIEWS, 2011, 111 (06) : 3913 - 3961