Original Articles |
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Electric Field Enhancement of Nano Gap of Silver Prisms |
KENZO Yamaguchi1;TOMOHIRO Inoue1;MASAMITSU Fujii2;MASANOBU Haraguchi1; TOSHIHIRO Okamoto1;MASUO Fukui1;SHU Seki3;SEIICHI Tagawa3 |
1Department of Optical Science and Engineering, Faculty and School of Engineering, The University of Tokushima, 2-1 Minamijosanjima-cho, Tokushima-city, Tokushima 770-8506, Japan2Department of Electronics and Mechanics, Toba National College of Maritime Technology, 1-1 Ikegami-cho, Toba-city, Mie 517-8501, Japan3Institute of Scientific and Industrial Research, Osaka University, 8-1 Mihogaoka, Ibaraki, Osaka 567-0047, Japan |
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Cite this article: |
KENZO Yamaguchi, TOMOHIRO Inoue, MASAMITSU Fujii et al 2007 Chin. Phys. Lett. 24 2934-2937 |
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Abstract Using numerical calculation, we examine the effects of gap distance of a pair of nano gap silver prisms with rounded corners on the local light intensity enhancement. Two peaks due to localized surface plasmon (LSP) excitation are observed in a wavelength range from 900nm to 300nm. The results demonstrate that peaks at a longer and a shorter wavelength corresponded to dipole-like and quadrupole-like LSP resonances, respectively. It is found that a gap distance up to 20nm provides larger light intensity enhancement than that of a single silver nano prism with rounded corners. Furthermore, nano gap silver prisms are fabricated by direct focused ion beam processing, and we measure the scattering light spectrum of a pair of nano prisms by a confocal optical system. However, the two LSP peaks are not observed in visible range because the sizes of the nano gap and prisms are too large.
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Keywords:
73.20.Mf
63.20.Pw
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Received: 13 June 2007
Published: 20 September 2007
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PACS: |
73.20.Mf
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(Collective excitations (including excitons, polarons, plasmons and other charge-density excitations))
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63.20.Pw
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(Localized modes)
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[1] Kik P G, Martin A L, Maier S A, Atwater H A and Watson T J 2002 Proc. SPIE 4810 7 [2] Pompa P P, Martiradonna L, Torre A D, Sala F D, Manna L, VittorioM D, Calabi F, Cingolani R and Rinaldi R 2006 Nature Nanotech. 1 126 [3] Fukui M, Okamoto T, Ogawa T, Haraguchi M, Pile D F P and GramotnevD K 2006 Proc. SPIE 6324 632401 [4] Yamaguchi K, Inoue T, Fujii M, Ogawa T, Matsuzaki Y, Okamoto T,Haraguchi M and Fukui M 2007 J. Microsc. (accepted) [5] Jin R, Cao Y W, Mirkin C A, Kelly K L, Schatz G C and Zheng J G2001 Science 294 1901 [6] Tamaru H, Kuwata H, Miyazaki H T and Miyano K 2002 Appl.Phys. Lett. 80 1826 [7] Futamata M, Maruyama Y and Ishikawa M 2003 J. Phys.Chem. B 107 7607 [8] Kottmann J P and Martin O J F 2001 Opt. Exp. 8 655 [9] Sundaramurthy A, Schuck P J, Conley N R, Fromm D P, Kino G andMoerner W E 2006 Nano. Lett. 6 355 [10] WhitneyA V, Elam J W, Zou S, Zinovev A V, Stair P C, Schatz G Cand Duyne R P V 2005 J. Phys. Chem. B 109 20522 [11] Sundaramurthy A, Crozier K B, Kino G S, Fromm D P, Schuck P J andMoerner W E 2005 Phys. Rev. B 72 165409 [12] Fromm D P, Sundaramurthy A, Schuck P J, Kino G and Moerner W E2004 Nano. Lett. 4 957 [13] Yamaguchi K, Inoue T, Fujii M, Haraguchi M, Okamoto T, Fukui M,Seki S and Tagawa S 2007 Ext. Abstr. (APNFO-6) 42 |
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