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空心银纳米棱镜的表面等离子体模式耦合与折射率灵敏度

Coupling of Surface Plasmon Modes and Refractive Index Sensitivity of Hollow Silver Nanoprism.

作者信息

Zhang K J, Lu D B, Da B, Ding Z J

机构信息

Key Laboratory of Strongly-Coupled Quantum Matter Physics, Chinese Academy of Sciences; Hefei National Laboratory for Physical Sciences at Microscale and Department of Physics, University of Science and Technology of China, Hefei, Anhui, 230026, P. R. China.

Center for Materials Research by Information Integration, Research and Services Division of Materials Data and Integrated System, National Institute for Materials Science, 1-2-1 Sengen, Tsukuba, Ibaraki, 305-0047, Japan.

出版信息

Sci Rep. 2018 Oct 30;8(1):15993. doi: 10.1038/s41598-018-34477-6.

Abstract

Localized surface plasmon (LSP) modes depend strongly on the morphology of nanoparticle and the surrounding dielectric medium. The hollow nanostructure provides a new way to modulate the surface plasmon modes due to the additional cavity surface. In this work, we study systematically the multipolar surface plasmon modes of hollow silver nanoprism (HSN) by simulation of electron energy loss spectroscopy (EELS) spectra based on the boundary element method (BEM). Herein the effects of the cavity size and position are taken into account. The LSP modes of HSNs are compared with those of perfect silver nanoprism (SN). The red-shift behaviors of multipolar modes can be found as increasing the cavity size. Modes A and C have similar red-shift tendency and obey the plasmon ruler equation, which can be explained by dipole-dipole coupling mode. Meanwhile, the degenerate modes will be split by changing the cavity position, and opposite shift tendencies of split degenerate states are observed. These are caused by different coupling nature of degenerate modes. Moreover, high refractive index sensitivity (RIS) can be obtained for HSN by changing the cavity size and position.

摘要

局域表面等离子体(LSP)模式强烈依赖于纳米颗粒的形态和周围的介电介质。由于额外的腔体表面,中空纳米结构为调制表面等离子体模式提供了一种新方法。在这项工作中,我们基于边界元方法(BEM)通过模拟电子能量损失谱(EELS)系统地研究了中空银纳米棱镜(HSN)的多极表面等离子体模式。在此考虑了腔体尺寸和位置的影响。将HSN的LSP模式与完美银纳米棱镜(SN)的模式进行了比较。随着腔体尺寸的增加,可以发现多极模式的红移行为。模式A和C具有相似的红移趋势并遵循等离子体尺方程,这可以用偶极 - 偶极耦合模式来解释。同时,简并模式会因腔体位置的改变而分裂,并且观察到分裂简并态的相反位移趋势。这些是由简并模式的不同耦合性质引起的。此外,通过改变腔体尺寸和位置,HSN可以获得高折射率灵敏度(RIS)。

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