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超薄膜上的长程表面等离子体激元。

Long-range surface plasmons on ultrathin membranes.

作者信息

Berini Pierre, Charbonneau Robert, Lahoud Nancy

机构信息

Spectalis Corp., 610 Bronson Avenue, Ottawa, Ontario K1S 4E6, Canada.

出版信息

Nano Lett. 2007 May;7(5):1376-80. doi: 10.1021/nl070464w. Epub 2007 Apr 13.

Abstract

A waveguide structure supporting long-range surface plasmon waves in any gaseous or liquid environment is described. The waveguide comprises a large area dielectric membrane of nanometric thickness upon which thin metal stripes and features are deposited. This structure allows the environment to surround the stripe thus ensuring that an essentially symmetric dielectric background is always present, as required to support the wave. The membrane perturbs the wave in a manner that significantly increases its surface sensitivity. The high surface sensitivity in concert with the ability to create long optical interaction length plasmonic structures leads to high sensitivity (bio)chemical sensors. Theoretical results describing the operation of the structure are given along with experimental results demonstrating the propagation of long-range surface plasmons in air and in liquid. The structure opens up a wealth of opportunities for research and application across many fields, including plasmonics, photonics, material science, surfaces, and solid-liquid interfaces.

摘要

本文描述了一种在任何气态或液态环境中支持长程表面等离子体波的波导结构。该波导包括一个大面积的纳米厚度介电膜,在其上沉积了薄金属条纹和特征结构。这种结构允许环境包围条纹,从而确保始终存在基本对称的介电背景,以支持波的传播。该膜以显著提高其表面灵敏度的方式扰动波。高表面灵敏度与创建长光学相互作用长度等离子体结构的能力相结合,可实现高灵敏度(生物)化学传感器。文中给出了描述该结构运行的理论结果,以及证明长程表面等离子体在空气和液体中传播的实验结果。该结构为包括等离子体学、光子学、材料科学、表面和固液界面在内的许多领域的研究和应用开辟了大量机会。

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