Barbillon Grégory, Ivanov Andrey, Sarychev Andrey K
EPF-Ecole d'Ingénieurs, 3 bis Rue Lakanal, 92330 Sceaux, France.
Institute for Theoretical and Applied Electrodynamics, Russian Academy of Sciences, 125412 Moscow, Russia.
Nanomaterials (Basel). 2021 Jun 8;11(6):1521. doi: 10.3390/nano11061521.
Maximizing the surface-enhanced Raman scattering (SERS) is a significant effort focused on the substrate design. In this paper, we are reporting on an important enhancement in the SERS signal that has been reached with a hybrid asymmetric dimer array on gold film coupled to the efficient adsorption of thiophenol molecules on this array. Indeed, the key factor for the SERS effect is the adsorption efficiency of chemical molecules on the surface of plasmonic nanostructures, which is measured by the value of the adsorption constant usually named . In addition, this approach can be applied to several SERS substrates allowing a prescriptive estimate of their relative performance as sensor and to probe the affinity of substrates for a target analyte. Moreover, this prescriptive estimate leads to higher predictability of SERS activity of molecules, which is also a key point for the development of sensors for a broad spectrum of analytes. We experimentally investigated the sensitivity of the Au/Si asymmetric dimer array on the gold film for SERS sensing of thiophenol molecules, which are well-known for their excellent adsorption on noble metals and serving as a proof-of-concept in our study. For this sensing, a detection limit of 10 pM was achieved as well as an adsorption constant of 6 × 106 M-1. The enhancement factor of 5.2 × 1010 was found at the detection limit of 10 pM for thiophenol molecules.
最大化表面增强拉曼散射(SERS)是一项专注于基底设计的重要工作。在本文中,我们报道了通过金膜上的混合不对称二聚体阵列实现的SERS信号的重要增强,该阵列与苯硫酚分子在其上的有效吸附相关。实际上,SERS效应的关键因素是化学分子在等离子体纳米结构表面的吸附效率,这通常通过吸附常数的值来衡量,通常称为 。此外,这种方法可应用于多种SERS基底,从而对其作为传感器的相对性能进行规定性估计,并探测基底对目标分析物的亲和力。而且,这种规定性估计导致分子SERS活性的更高可预测性,这也是开发用于广泛分析物的传感器的关键点。我们通过实验研究了金膜上的金/硅不对称二聚体阵列对苯硫酚分子SERS传感的灵敏度,苯硫酚分子因其在贵金属上的优异吸附而闻名,并在我们的研究中作为概念验证。对于这种传感,实现了10 pM的检测限以及6×106 M-1的吸附常数 。在苯硫酚分子10 pM的检测限处发现增强因子为5.2×1010。