论文标题

有机染料分子与介电纳米粒子阵列的晶格模式之间的强耦合

Strong coupling between organic dye molecules and lattice modes of a dielectric nanoparticle array

论文作者

Heilmann, Rebecca, Väkeväinen, Aaro I., Martikainen, Jani-Petri, Törmä, Päivi

论文摘要

与光相互作用的等离子体结构提供了电磁共振,从而导致高度的局部场约束,从而增强了光 - 物质相互作用。等离子体结构通常由金属组成,但是,金属遭受了很高的欧姆损失和加热。另一方面,高索引电介质可以作为替代材料,因为它们的低脉冲性质和强烈的散射能力。我们研究了由覆盖有机染料分子膜(IR-792)组成的系统的光学性质,并将这些介电阵列与金属纳米颗粒阵列进行比较。我们通过更改染料膜中的浓度来调整轻度 - 物质的相互作用,并报告系统处于强耦合状态。我们观察到纳米颗粒阵列的表面晶格共振(SLR)与分别为253 MeV和293 MeV的染料分子的吸收系之间的RABI分裂,分别为介质和金属纳米颗粒。狂犬分裂线性地取决于染料分子浓度的平方根,我们进一步评估了狂犬分裂如何依赖于薄膜厚度的低染料分子浓度。对于较薄的厚度薄膜,最多可达260 nm,我们没有观察到可见的狂犬分裂。但是,狂犬分裂的厚度从540 nm到990 nm演变。我们执行有限差分时间域模拟,以分析介电和金属纳米颗粒阵列的近场增强。电场的增强了1200和400,分别靠近金和无定形硅的颗粒,并且模式在两种材料周围围绕颗粒周围延伸了一半以上。

Plasmonic structures interacting with light provide electromagnetic resonances which result in a high degree of local field confinement enabling the enhancement of light-matter interaction. Plasmonic structures typically consist of metals which, however, suffer from very high ohmic losses and heating. High-index dielectrics, on the other hand, can serve as an alternative material due to their low-dissipative nature and strong scattering abilities. We study the optical properties of a system composed of all-dielectric nanoparticle arrays covered with a film of organic dye molecules (IR-792), and compare these dielectric arrays with metallic nanoparticle arrays. We tune the light-matter interaction by changing the concentration in the dye film and report the system to be in the strong coupling regime. We observe a Rabi splitting between the surface lattice resonances (SLRs) of the nanoparticle arrays and the absorption line of the dye molecules of up to 253 meV and 293 meV, for the dielectric and metallic nanoparticles, respectively. The Rabi splitting depends linearly on the square root of the dye molecule concentration , and we further assess how the Rabi splitting depends on the film thickness for a low dye molecule concentration. For thinner films of thicknesses up to 260 nm, we observe no visible Rabi splitting. However, a Rabi splitting evolves at thicknesses from 540 nm to 990 nm. We perform finite-difference time-domain simulations to analyze the near-field enhancements for the dielectric and metallic nanoparticle arrays. The electric fields are enhanced by a factor of 1200 and 400, close to the particles for gold and amorphous silicon, respectively, and the modes extend over half a micron around the particles for both materials.

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