Bujak Ł, Olejnik M, Brotosudarmo T H P, Schmidt M K, Czechowski N, Piatkowski D, Aizpurua J, Cogdell R J, Heiss W, Mackowski S
Institute of Physics, Faculty of Physics, Astronomy and Informatics, Nicolaus Copernicus University, Grudziadzka 5, 87-100 Torun, Poland.
Phys Chem Chem Phys. 2014 May 21;16(19):9015-22. doi: 10.1039/c3cp54364a.
Fluorescence imaging of hybrid nanostructures composed of a bacterial light-harvesting complex LH2 and Au nanorods with controlled coupling strength is employed to study the spectral dependence of the plasmon-induced fluorescence enhancement. Perfect matching of the plasmon resonances in the nanorods with the absorption bands of the LH2 complexes facilitates a direct comparison of the enhancement factors for longitudinal and transverse plasmon frequencies of the nanorods. We find that the fluorescence enhancement due to excitation of longitudinal resonance can be up to five-fold stronger than for the transverse one. We attribute this result, which is important for designing plasmonic functional systems, to a very different distribution of the enhancement of the electric field due to the excitation of the two characteristic plasmon modes in nanorods.
利用由细菌光捕获复合物LH2和具有可控耦合强度的金纳米棒组成的混合纳米结构的荧光成像,研究等离子体激元诱导的荧光增强的光谱依赖性。纳米棒中的等离子体共振与LH2复合物的吸收带完美匹配,便于直接比较纳米棒纵向和横向等离子体频率的增强因子。我们发现,纵向共振激发引起的荧光增强比横向共振激发引起的荧光增强强多达五倍。我们将这一对于设计等离子体功能系统很重要的结果归因于纳米棒中两种特征等离子体模式激发引起的电场增强分布非常不同。