Angelini Margherita, Manobianco Eliana, Pellacani Paola, Floris Francesco, Marabelli Franco
Department of Physics, University of Pavia, Via Bassi 6, 27100 Pavia, Italy.
Plasmore S.r.l, Via Vittorio Emanuele II 4, 27100 Pavia, Italy.
Nanomaterials (Basel). 2022 Dec 6;12(23):4339. doi: 10.3390/nano12234339.
The recent development and technological improvement in dealing with plasmonic metasurfaces has triggered a series of interesting applications related to sensing challenges. Fluorescence has been one of the most studied tools within such a context. With this in mind, we used some well characterized structures supporting plasmonic resonances to study their influence on the emission efficiency of a fluorophore. An extended optical analysis and a complementary investigation through finite-difference time-domain (FDTD) simulations have been combined to understand the coupling mechanism between the excitation of plasmonic modes and the fluorescence absorption and emission processes. The results provide evidence of the spectral shape dependence of fluorescence on the plasmonic field distribution together with a further relationship connected with the enhancement of its signal. It has made evident that the spectral region characterized by the largest relative enhancement closely corresponds to the strongest signatures of the plasmonic modes, as described by both the optical measurements and the FDTD findings.
近年来,在处理等离子体超表面方面的发展和技术改进引发了一系列与传感挑战相关的有趣应用。在这种背景下,荧光一直是研究最多的工具之一。考虑到这一点,我们使用了一些具有良好表征的支持等离子体共振的结构,来研究它们对荧光团发射效率的影响。我们结合了扩展的光学分析和通过时域有限差分(FDTD)模拟进行的补充研究,以了解等离子体模式激发与荧光吸收和发射过程之间的耦合机制。结果提供了荧光光谱形状依赖于等离子体场分布的证据,以及与荧光信号增强相关的进一步关系。结果表明,以最大相对增强为特征的光谱区域与等离子体模式的最强特征密切对应,这在光学测量和FDTD结果中都有描述。