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金属光栅上银纳米颗粒二维薄片的表面等离子体共振特性

Surface plasmon resonance properties of silver nanoparticle 2D sheets on metal gratings.

作者信息

Baba Akira, Imazu Keisuke, Yoshida Akihito, Tanaka Daisuke, Tamada Kaoru

机构信息

Center for Transdisciplinary Research, Niigata University, 8050 Ikarashi 2-nocho, Nishi-ku, Niigata, 950-2181 Japan.

Institute for Materials Chemistry and Engineering, Kyushu University, 6-10-1 Hakozaki, Higashi-ku, Fukuoka, 812-8581 Japan.

出版信息

Springerplus. 2014 Jun 5;3:284. doi: 10.1186/2193-1801-3-284. eCollection 2014.

Abstract

Grating-coupled propagating surface plasmons associated with silver-nanoparticle 2D crystalline sheets exhibit sensitive plasmonic resonance tuning. Multilayered silver-nanoparticle 2D crystalline sheets are fabricated on gold or silver grating surfaces by the Langmuir- Blodgett method. We show that the deposition of Ag crystalline nanosheets on Au or Ag grating surfaces causes a drastic change in propagating surface plasmon resonance (SPR) both in angle measurements at fixed wavelengths and in fixed incident-angle mode by irradiation of white light. The dielectric constant of the multilayered silver nanosheet is estimated by a rigorous coupled-wave analysis. We find that the dielectric constant drastically increases as the number of silver-nanosheet layers increases. The experimentally obtained SP dispersions of Ag crystalline nanosheets on Au and Ag gratings are compared with the calculated SP dispersion curves. The drastic change in the surface plasmon resonance caused by the deposition of Ag-nanoparticle 2D crystalline sheets on metal grating surfaces suggests the potential for applications in highly sensitive sensors or for plasmonic devices requiring greatly enhanced electric fields.

摘要

与银纳米颗粒二维晶体片相关的光栅耦合传播表面等离子体激元表现出灵敏的等离子体共振调谐。多层银纳米颗粒二维晶体片通过朗缪尔-布洛杰特方法制备在金或银光栅表面上。我们表明,在金或银光栅表面沉积银晶体纳米片会导致在固定波长下的角度测量以及通过白光照射的固定入射角模式下传播表面等离子体共振(SPR)发生剧烈变化。通过严格耦合波分析估算多层银纳米片的介电常数。我们发现,随着银纳米片层数的增加,介电常数急剧增大。将在金和银光栅上实验获得的银晶体纳米片的表面等离子体激元色散与计算得到的表面等离子体激元色散曲线进行比较。银纳米颗粒二维晶体片沉积在金属光栅表面引起的表面等离子体共振的剧烈变化表明其在高灵敏度传感器或需要大幅增强电场的等离子体器件中的应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b76c/4059854/aba28f6dd0ac/40064_2014_999_Fig1_HTML.jpg

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