Focusing of surface phonon-polaritons along conical and wedge polar nanostructures

被引:7
作者
Gluchko, Sergei [1 ]
Ordonez-Miranda, Jose [1 ]
Tranchant, Laurent [1 ]
Antoni, Thomas [1 ,2 ]
Volz, Sebastian [1 ]
机构
[1] Ecole Cent Paris, UPR CNRS 288, Lab Enet Mol & Macroscop, Combust, F-92295 Chatenay Malabry, France
[2] Ecole Cent Paris, UMR CNRS 8537, Lab Photon Quant & Mol, Ecole Normale Super Cachan, F-92295 Chatenay Malabry, France
关键词
PLASMON POLARITONS; MODES; LIGHT;
D O I
10.1063/1.4928207
中图分类号
O59 [应用物理学];
学科分类号
摘要
Focusing of surface phonon-polaritons propagating toward the tip of a cone and the edge of a wedge is theoretically analyzed and compared. Based on Maxwell's equations, explicit expressions for the dispersion relations in each structure are determined and solved numerically for a propagation parameter driving the surface phonon-polariton energy density. For conical and wedge structures of SiO2, it is found that: (1) the cone (wedge) supports the polariton focusing only for aperture angles in the interval 18 degrees-68 degrees (21 degrees-51 degrees), and within the range of excitation frequencies from 32.1 THz (31.5 THz) to 33.9 THz (33.9 THz). In this frequency interval, the real part of the SiO2 permittivity is negative and the presence of polaritons is significant. (2) The polariton focusing efficiency of both the cone and wedge reaches its maximum values at the critical frequency f(cr) = 33: 6 THz and at different aperture angles of about alpha(opt) = 45 degrees and alpha(opt) = 30 degrees, respectively. (3) When the polaritons travel from 100 nm to 5 nm toward the tip of the cone with this optimum angle, their Poynting vector increases by a factor of 12, which is about four times larger than the corresponding one provided by the wedge and indicates that the cone is more efficient than the wedge for the focusing of surface phonon-polaritons. (C) 2015 AIP Publishing LLC.
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页数:8
相关论文
共 35 条
[1]  
Agranovich VM., 1982, Surface polaritons: electromagnetic waves at surfaces and interfaces
[2]   Superfocusing of surface polaritons in the conical structure [J].
Babadjanyan, AJ ;
Margaryan, NL ;
Nerkararyan, KV .
JOURNAL OF APPLIED PHYSICS, 2000, 87 (08) :3785-3788
[3]   Surface plasmon subwavelength optics [J].
Barnes, WL ;
Dereux, A ;
Ebbesen, TW .
NATURE, 2003, 424 (6950) :824-830
[4]  
Bladel J.V., 1991, SINGULAR ELECTROMAGN
[5]   Plasmon optics of structured silver films -: art. no. 155404 [J].
Bouhelier, A ;
Huser, T ;
Tamaru, H ;
Güntherodt, HJ ;
Pohl, DW ;
Baida, FI ;
Van Labeke, D .
PHYSICAL REVIEW B, 2001, 63 (15)
[6]   SURFACE POLARITONS - PROPAGATING ELECTROMAGNETIC MODES AT INTERFACES [J].
BURSTEIN, E ;
CHEN, WP ;
CHEN, YJ ;
HARTSTEIN, A .
JOURNAL OF VACUUM SCIENCE & TECHNOLOGY, 1974, 11 (06) :1004-1019
[7]   Size-dependent infrared properties of MgO nanoparticles with evidence of screening effect [J].
Chalopin, Yann ;
Dammak, Hichem ;
Hayoun, Marc ;
Besbes, Mondher ;
Greffet, Jean-Jacques .
APPLIED PHYSICS LETTERS, 2012, 100 (24)
[8]   HEAT FLOW IN THIN FILMS VIA SURFACE PHONON-POLARITONS [J].
Chen, Dye-Zone A. ;
Chen, Gang .
FRONTIERS IN HEAT AND MASS TRANSFER, 2010, 1 (02)
[9]   Measurement of silicon dioxide surface phonon-polariton propagation length by attenuated total reflection [J].
Chen, Dye-Zone A. ;
Chen, Gang .
APPLIED PHYSICS LETTERS, 2007, 91 (12)
[10]   Surface phonon-polariton mediated thermal conductivity enhancement of amorphous thin films [J].
Chen, DZA ;
Narayanaswamy, A ;
Chen, G .
PHYSICAL REVIEW B, 2005, 72 (15)