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首页> 外文期刊>Physical Review, B. Condensed Matter >SCATTERING OF SURFACE-PLASMON POLARITONS BY DIPOLES NEAR A SURFACE - OPTICAL NEAR-FIELD LOCALIZATION
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SCATTERING OF SURFACE-PLASMON POLARITONS BY DIPOLES NEAR A SURFACE - OPTICAL NEAR-FIELD LOCALIZATION

机译:靠近表面的双分子对表面等离子体激元的散射-光学近场定位

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摘要

Electromagnetic radiation of electric dipoles, which are placed near a metallic surface and excited by the ongoing surface polaritons, is investigated. The dipoles are used to represent the surface scattering centers, irregulars, and mesoscopic particles. A formalism which distinguishes the evanescent field and propagating waves in the dipole radiation is employed to calculate the scattered surface polariton field in the near- and far-field zones. Numerical studies of the local field at the dipole sites were carried out for 50 dipoles with various distances between the dipoles and between the dipoles and the surface. An enhanced local field was obtained in some cases, and the conditions for the enhancement are discussed. Two-dimensional intensity distributions of the scattered field in the plane perpendicular to the surface and in the plane parallel to the surface for systems with up to 100 dipoles are presented for the propagating waves, the evanescent field,and the total field. Finally, a scanning local probe is introduced in the self-consistent calculations, and a numerical modeling of the near-field optical microscopy over the dipole system excited by the surface polaritons is carried out for various tip-surface separations. The results are employed to discuss phenomena in the surface polariton optics, particularly the recently observed strong optical near-field localization. [References: 48]
机译:研究了电偶极子的电磁辐射,这些电偶极子放置在金属表面附近并受到正在进行的表面极化子激发。偶极子用于表示表面散射中心,不规则结构和介观粒子。可以用形式论来区分偶极辐射中的field逝场和传播波,以计算近场和远场区域中的散射表面极化子场。对偶极子之间以及偶极子与表面之间的不同距离的50个偶极子进行了偶极子场局部场的数值研究。在某些情况下获得了增强的局部场,并讨论了增强的条件。对于传播波,the逝场和总场,针对具有多达100个偶极子的系统,给出了垂直于表面的平面和与表面平行的平面中的散射场的二维强度分布。最后,在自洽计算中引入了扫描局部探针,并针对各种尖端表面分离对由表面极化子激发的偶极系统进行了近场光学显微镜的数值建模。结果被用于讨论表面极化光学中的现象,特别是最近观察到的强光学近场定位。 [参考:48]

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