Electric near-field enhancing properties of a finite-size metal conical nano-tip

被引:42
作者
Goncharenko, A. V.
Chang, Hung-Chih
Wang, Juen-Kai [1 ]
机构
[1] Acad Sinica, Inst Atom & Mol Sci, Taipei 106, Taiwan
[2] Natl Acad Sci Ukraine, Inst Semicond Phys, UA-03028 Kiev, Ukraine
[3] Natl Taiwan Univ, Ctr Condensed Matter Sci, Taipei 106, Taiwan
关键词
scanning near-field optical microscopy (SNOM); nano-tip; finite-difference time-domain (FDTD) method;
D O I
10.1016/j.ultramic.2006.06.004
中图分类号
TH742 [显微镜];
学科分类号
摘要
Finite-difference time-domain (FDTD) technique simulations are performed to study the near-field resonance properties of a silver conical nano-tip with a rounded end. Varying the tip geometry, we have computed the electric field distribution, as well as the electric field enhancement factor in the immediate vicinity of the tip apex. The aim of this study is to find optimal geometric parameters of the conical tip, such as its angle and length, in order to maximize the electric field enhancement factor. The increase of the tip length is shown to result in a redshift of the tip resonance wavelength. In addition, some subsidiary (non-dipole) peaks appear for relatively long tips. The peak enhancement values for the small-angle tips increase with the tip length while those for the large-angle ones decrease with it. At the same time, the dependencies of the field enhancement on the cone angle exhibit non-monotonic behavior. In other words, an optimal angle exists allowing one to maximize the electric near field. Finally, the effect of the supporting dielectric medium on the electric field near the tip apex is discussed. In the approximation used, the effect is shown to leave the main conclusions unchanged. (c) 2006 Elsevier B.V. All rights reserved.
引用
收藏
页码:151 / 157
页数:7
相关论文
共 49 条
[1]  
[Anonymous], 2000, COMPUTATIONAL ELECTR
[2]   Apertureless near-field optical microscopy: A study of the local tip field enhancement using photosensitive azobenzene-containing films [J].
Bachelot, R ;
H'Dhili, F ;
Barchiesi, D ;
Lerondel, G ;
Fikri, R ;
Royer, P ;
Landraud, N ;
Peretti, J ;
Chaput, F ;
Larnpel, G ;
Boilot, JP ;
Lahlil, K .
JOURNAL OF APPLIED PHYSICS, 2003, 94 (03) :2060-2072
[3]   Field enhancement in apertureless near-field scanning optical microscopy [J].
Bohn, JL ;
Nesbitt, DJ ;
Gallagher, A .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION, 2001, 18 (12) :2998-3006
[4]   Applications of field-enhanced near-field optical microscopy [J].
Bouhelier, A ;
Beversluis, MR ;
Novotny, L .
ULTRAMICROSCOPY, 2004, 100 (3-4) :413-419
[5]   Diagram method for exact solution of the problem of scanning near-field microscopy [J].
Bozhevolnyi, SI ;
Lozovski, VZ ;
Nazarok, YV .
OPTICS AND SPECTROSCOPY, 2001, 90 (03) :416-425
[6]   Optical antennas: Resonators for local field enhancement [J].
Crozier, KB ;
Sundaramurthy, A ;
Kino, GS ;
Quate, CF .
JOURNAL OF APPLIED PHYSICS, 2003, 94 (07) :4632-4642
[7]   Plasmon resonances on metal tips: Understanding tip-enhanced Raman scattering [J].
Demming, AL ;
Festy, F ;
Richards, D .
JOURNAL OF CHEMICAL PHYSICS, 2005, 122 (18)
[8]  
Edwards D.F., 1985, Handbook of optical constants of solids
[9]   Resonant excitation of tip plasmons for tip-enhanced Raman SNOM [J].
Festy, F ;
Demming, A ;
Richards, D .
ULTRAMICROSCOPY, 2004, 100 (3-4) :437-441
[10]   Modeling recent experiments of apertureless near-field optical microscopy using 2D finite element method [J].
Fikri, R ;
Barchiesi, D ;
H'Dhili, F ;
Bachelot, R ;
Vial, A ;
Royer, P .
OPTICS COMMUNICATIONS, 2003, 221 (1-3) :13-22