Localized Surface Plasmon Resonances in Spatially Dispersive Nano-Objects: Phenomenological Treatise

被引:32
作者
Ginzburg, Pavel [1 ]
Zayats, Anatoly V. [1 ]
机构
[1] Kings Coll London, Dept Phys, London WC2R 2LS, England
基金
英国工程与自然科学研究理事会;
关键词
surface plasmon resonance; plasmonic nanoparticles; nonlocality; spatial dispersion; FIELD ENHANCEMENT; NONLOCAL RESPONSE; NANOPARTICLES; PERFORMANCE; PARTICLES; MODEL;
D O I
10.1021/nn400842m
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Nonlocal optical response of materials, important at the nanometric scale, influences numerous optical phenomena, such as electromagnetic field confinement and spectral characteristics of plasmonic resonances. Here, we present a general phenomenological approach to account for nonlocal material polarizabilities in nanoscale metal particles. The problem of nonlocal plasmonic resonances is formulated by an integro-differential equation in a space domain and solved by adopting its weak form, implemented in the finite element method, thus, dispensing with the requirements on additional boundary conditions. As an example, nonlocal smearing effects in plasmonic nanorods of various cross sections and nanotubes have been considered. Clear signature of nonlocality manifests itself in the interference fringes in the potential profile and a significant frequency shift of the localized surface plasmon resonances. These effects are especially important for nanoparticles with geometrical features comparable to the de Broglie wavelengths of electrons participating in the light-matter interactions. The proposed method provides a universal tool for phenomenological account of nonlocalities of any kind with the only requirement of linearity In system's response.
引用
收藏
页码:4334 / 4342
页数:9
相关论文
共 51 条
[1]  
Agranovich V.M., 1984, Spatial Dispersion in Crystal Optics and Theory of Excitions
[2]   Strong spatial dispersion in wire media in the very large wavelength limit -: art. no. 113103 [J].
Belov, PA ;
Marqués, R ;
Maslovski, SI ;
Nefedov, IS ;
Silveirinha, M ;
Simovski, CR ;
Tretyakov, SA .
PHYSICAL REVIEW B, 2003, 67 (11) :4
[3]   Surface plasmon amplification by stimulated emission of radiation: Quantum generation of coherent surface plasmons in nanosystems [J].
Bergman, DJ ;
Stockman, MI .
PHYSICAL REVIEW LETTERS, 2003, 90 (02) :4
[4]   Concave Plasmonic Particles: Broad-Band Geometrical Tunability in the Near-Infrared [J].
Berkovitch, Nikolai ;
Ginzburg, Pavel ;
Orenstein, Meir .
NANO LETTERS, 2010, 10 (04) :1405-1408
[5]   OPTICAL SURFACE MODES OF METAL SPHERES [J].
BOARDMAN, AD ;
PARANJAPE, BV .
JOURNAL OF PHYSICS F-METAL PHYSICS, 1977, 7 (09) :1935-1945
[6]   Probing the Ultimate Limits of Plasmonic Enhancement [J].
Ciraci, C. ;
Hill, R. T. ;
Mock, J. J. ;
Urzhumov, Y. ;
Fernandez-Dominguez, A. I. ;
Maier, S. A. ;
Pendry, J. B. ;
Chilkoti, A. ;
Smith, D. R. .
SCIENCE, 2012, 337 (6098) :1072-1074
[7]   Unidirectional Emission of a Quantum Dot Coupled to a Nanoantenna [J].
Curto, Alberto G. ;
Volpe, Giorgio ;
Taminiau, Tim H. ;
Kreuzer, Mark P. ;
Quidant, Romain ;
van Hulst, Niek F. .
SCIENCE, 2010, 329 (5994) :930-933
[8]   Nonlocal effects in effective-medium response of nanolayered metamaterials [J].
Elser, Justin ;
Podolskiy, Viktor A. ;
Salakhutdinov, Ildar ;
Avrutsky, Ivan .
APPLIED PHYSICS LETTERS, 2007, 90 (19)
[9]   Plasmonic transmission lines:: from micro to nano scale with λ/4 impedance matching [J].
Ginzburg, Pavel ;
Orenstein, Meir .
OPTICS EXPRESS, 2007, 15 (11) :6762-6767
[10]   Gap plasmon polariton structure for very efficient microscale-to-nanoscale interfacing [J].
Ginzburg, Pavel ;
Arbel, David ;
Orenstein, Meir .
OPTICS LETTERS, 2006, 31 (22) :3288-3290