Mehrvar L, Sadeghipari M, Tavassoli S H, Mohajerzadeh S, Fathipour M
Laser and Plasma Research Institute, Shahid Beheshti University, G. C., Evin, Tehran, 19839, Iran, Tehran, 1483963113, Iran.
Thin Film and Nanoelectronics Lab, Nanoelectronics Center of Excellence, School of Electrical and Computer Engineering, University of Tehran, Tehran, 143957131, Iran.
Sci Rep. 2017 Sep 21;7(1):12106. doi: 10.1038/s41598-017-12423-2.
Surface enhanced Raman scattering (SERS) systems with large number of active sites exhibit superior capability in detection of low concentration analytes. In this paper, we present theoretical as well as experimental studies on the optical properties of a unique hybrid nanostructure, Ag NPs decorated silicon double nanocones (Si-DNCs) array, which provide high density of hot spots. The Si-DNC array is fabricated by employing electron beam lithography together with plasma etching process. Multipole analysis of the scattering spectra, based on the multipole expansion theory, confirms that the toroidal dipole moment dominates over other electric and magnetic multipole moments in the Si-DNCs array. This response occurs as a result of generating current densities flowing in opposite directions and consequently generating H-field vortexes inside the nanocones. Moreover, SERS applicability of this type of nanostructure is examined. For this purpose, the Si-DNCs array is decorated with Ag nanoparticles (NPs) by means of electroless deposition method. Simulation results indicate that combination of multiple resonances, including LSPR resonance of Ag NPs, longitudinal standing wave resonance of Ag layer and inter-particle interaction in the gap region, result in a significant SERS enhancement. Our experimental results demonstrate that Si-DNC/Ag NPs array substrate provides excellent reproducibility and ultrahigh sensitivity.
具有大量活性位点的表面增强拉曼散射(SERS)系统在检测低浓度分析物方面表现出卓越的能力。在本文中,我们对一种独特的混合纳米结构——银纳米颗粒修饰的硅双纳米锥(Si-DNCs)阵列的光学性质进行了理论和实验研究,该阵列提供了高密度的热点。Si-DNC阵列是通过电子束光刻结合等离子体蚀刻工艺制备的。基于多极展开理论对散射光谱进行的多极分析证实,在Si-DNCs阵列中,环形偶极矩比其他电和磁多极矩占主导地位。这种响应是由于在纳米锥内部产生了方向相反的电流密度,从而产生了H场涡旋。此外,还研究了这种类型纳米结构的SERS适用性。为此,通过化学沉积法在Si-DNCs阵列上修饰了银纳米颗粒(NPs)。模拟结果表明,多种共振的组合,包括Ag NPs的局域表面等离子体共振(LSPR)、Ag层的纵向驻波共振以及间隙区域的粒子间相互作用,导致了显著的SERS增强。我们的实验结果表明,Si-DNC/Ag NPs阵列基底具有出色的重现性和超高灵敏度。