Attached and radiated electromagnetic fields of an electric point dipole

被引:47
作者
Keller, O [1 ]
机构
[1] Univ Aalborg, Inst Phys, DK-9220 Aalborg, Denmark
关键词
D O I
10.1364/JOSAB.16.000835
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The standard dyadic Green function description of the electromagnetic field generated by an electric point dipole is modified (and corrected) so that a rigorous classical theory for the attached and radiated parts of the near field appears. The present propagator formalism follows from analysis of the transverse and longitudinal dipole electrodynamics. Elimination of both the transverse and the longitudinal self-fields leads to a description of the radiated dipole field that enables one to obtain the associated energy flux in the near- and mid-field zones also and that is correctly retarded (with the vacuum speed of light) everywhere in space. The related retarded transverse propagator exists in the time (space) domain, whereas the standard propagator exists only in the frequency (space) domain. As a forerunner to an analysis of the Weyl expansions for the standard, longitudinal self-field and retarded transverse propagators, the plane-wave mode expansions of these propagators are investigated, and contour integrations are specified in such a manner that the rigorous Green function description is regained. It is found that, in order for the retarded transverse propagator description to be consistent in the near-field zone, the Weyl expansion for this propagator has to contain evanescent components not only for wave numbers larger than the vacuum wave number but in the entire angular spectrum. The present theory may influence our view of optical near-field phenomena and (classical) photon tunneling because in both of these fields a proper identification of attached and radiated fields seems needed. (C) 1999 Optical Society of America [S0740-3224(99)02004-4].
引用
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页码:835 / 847
页数:13
相关论文
共 57 条
[41]  
Nieto-Vesperinas M, 1991, SCATTERING DIFFRACTI
[42]   PHASE CONJUGATION AND SYMMETRIES WITH WAVE FIELDS IN FREE SPACE CONTAINING EVANESCENT COMPONENTS [J].
NIETOVESPERINAS, M ;
WOLF, E .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION, 1985, 2 (09) :1429-1434
[43]  
NIETOVESPERINAS M, 1996, OPTICS NANOMETER SCA
[44]  
Penrose R, 1984, SPINORS SPACE TIME, V1
[46]  
van de Hulst H. C., 1981, LIGHT SCATTERING SMA
[47]  
VANBLADEL J, 1991, IEEE ANTENN PROPAG M, V33, P69
[48]  
Weyl H, 1919, ANN PHYS-BERLIN, V60, P481
[49]   MARKOVIAN AND NON-MARKOVIAN BEHAVIOR IN 2-LEVEL ATOM FLUORESCENCE [J].
WODKIEWICZ, K ;
EBERLY, JH .
ANNALS OF PHYSICS, 1976, 101 (02) :574-593
[50]   Do evanescent waves contribute to the far field? [J].
Wolf, E ;
Foley, JT .
OPTICS LETTERS, 1998, 23 (01) :16-18