Optical fields inside a conical waveguide with a subwavelength-sized exit hole

被引:24
作者
Kuznetsova, TI
Lebedev, VS
Tsvelik, AM
机构
[1] PN Lebedev Phys Inst, Moscow 119991, Russia
[2] Brookhaven Natl Lab, Dept Phys, Upton, NY 11973 USA
来源
JOURNAL OF OPTICS A-PURE AND APPLIED OPTICS | 2004年 / 6卷 / 04期
关键词
near-field optics; scanning microscopy; metallized fibre probe; conical waveguide; subwavelength-sized aperture; light transmission;
D O I
10.1088/1464-4258/6/4/008
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Studies of the spatial distribution of time-harmonic optical fields inside a metallized cone, tapered to a subwavelength diameter, are reported. We consider the electric-type (TMmn) wave with the lowest-order indices m = 0 and n = 1. For these waves we obtain exact analytical results for electromagnetic fields inside a conical waveguide with a loss-free dielectric core and perfectly conducting metallic walls. The contributions of different field components to the energy density distributions are explicitly expressed as functions of the radial and angular coordinates. We outline a technique for the evaluation of the optical fields in the near-field zone beyond the exit aperture. This provides tools for the calculation of the amplitude reflection coefficient taking into account the influence of a plane interface between the truncated cone and free space. Particular attention is paid to the calculations of the energy density at the exit aperture and the near-field transmission coefficient of an optical probe with a glass core. We present a detailed analysis of the optical transmission of such a waveguide as a function of the wavelength for large taper angles and various values of the aperture diameter reaching similar tolambda/40. The results obtained yield the range of the cone parameters and wavelengths in which one can achieve a high spatial resolution capability and sufficiently high transmission efficiency.
引用
收藏
页码:338 / 348
页数:11
相关论文
共 46 条
[21]   Scanning near-field optical microscopy with aperture probes: Fundamentals and applications [J].
Hecht, B ;
Sick, B ;
Wild, UP ;
Deckert, V ;
Zenobi, R ;
Martin, OJF ;
Pohl, DW .
JOURNAL OF CHEMICAL PHYSICS, 2000, 112 (18) :7761-7774
[22]   Monolithic gallium arsenide cantilever for scanning near-field microscopy [J].
Heisig, S ;
Danzebrink, HU ;
Leyk, A ;
Mertin, W ;
Münster, S ;
Oesterschulze, E .
ULTRAMICROSCOPY, 1998, 71 (1-4) :99-105
[23]   High-efficiency and high-resolution fiber-optic probes for near field imaging and spectroscopy [J].
Islam, MN ;
Zhao, XK ;
Said, AA ;
Mickel, SS ;
Vail, CF .
APPLIED PHYSICS LETTERS, 1997, 71 (20) :2886-2888
[24]  
Jackson J. D., 1975, CLASSICAL ELECTRODYN
[25]   Electromagnetic fields in the cutoff regime of tapered metallic waveguides [J].
Knoll, B ;
Keilmann, F .
OPTICS COMMUNICATIONS, 1999, 162 (4-6) :177-181
[26]  
Kuznetsova TI, 2002, QUANTUM ELECTRON+, V32, P727, DOI 10.1070/QE200203208ABEH002280
[27]   STUDY OF NEAR-ZONE FIELDS OF A SMALL APERTURE [J].
LEVIATAN, Y .
JOURNAL OF APPLIED PHYSICS, 1986, 60 (05) :1577-1583
[28]  
MACDONALD HM, 1992, ELECT WAVES
[29]   DIFFRACTION AT SMALL APERTURES IN BLACK SCREENS [J].
MARCHAND, EW ;
WOLF, E .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1969, 59 (01) :79-&
[30]   Enhanced light confinement in a near-field optical probe with a triangular aperture -: art. no. 210801 [J].
Naber, A ;
Molenda, D ;
Fischer, UC ;
Maas, HJ ;
Höppener, C ;
Lu, N ;
Fuchs, H .
PHYSICAL REVIEW LETTERS, 2002, 89 (21) :2108011-2108014