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等离子体阵列上含染料聚合物薄膜的增强吸收和光致发光

Enhanced absorption and photoluminescence from dye-containing thin polymer film on plasmonic array.

作者信息

Murai Shunsuke, Oka Saho, Azzam Shaimaa I, Kildishev Alexander V, Ishii Satoshi, Tanaka Katsuhisa

出版信息

Opt Express. 2019 Feb 18;27(4):5083-5096. doi: 10.1364/OE.27.005083.

Abstract

Thin films containing light emitters act as light-to-light converters that absorb the incident light and emit luminescence. This well-known phenomenon is photoluminescence (PL). When a photoluminescent film is notably thinner than the absorption length of emitters, it exhibits weak absorption of incident light. The absorption can be increased by depositing the thin film on a plasmonic array of metallic nanocylinders arranged with a specific periodicity. The array couples the incident light into the thin film, facilitating the plasmon-enhanced absorption by the emitters in the film. In this study, we demonstrate both experimentally and numerically the plasmon-enhanced absorption of a rhodamine 6G-containing film that is thinner than its absorption length using a periodic array of Al nanocylinders. The experimental results demonstrate that the spectrally integrated PL intensity is increased up to 3.78 times. In addition to enhanced absorption, the array is also found to diffract the PL into a direction determined by the periodicity, thereby facilitating the multiplied enhancement of PL. The combination of the two factors yields a PL intensity enhanced up to 10 times at a specific angle and wavelength. Numerical simulations combining the carrier kinetics with full-wave electromagnetics in the time-domain support the experimental observations.

摘要

包含发光体的薄膜可作为光到光的转换器,吸收入射光并发出光致发光。这种众所周知的现象就是光致发光(PL)。当光致发光薄膜明显薄于发光体的吸收长度时,它对入射光的吸收就会很弱。通过将薄膜沉积在按特定周期排列的金属纳米圆柱体等离子体阵列上,可以增加吸收。该阵列将入射光耦合到薄膜中,促进薄膜中发光体的等离子体增强吸收。在本研究中,我们通过实验和数值模拟证明了使用铝纳米圆柱体的周期性阵列对厚度小于其吸收长度的含罗丹明6G薄膜的等离子体增强吸收。实验结果表明,光谱积分光致发光强度提高了3.78倍。除了增强吸收外,还发现该阵列将光致发光衍射到由周期决定的方向,从而促进光致发光的倍增增强。这两个因素的结合在特定角度和波长下使光致发光强度增强了10倍。结合时域中的载流子动力学和全波电磁学的数值模拟支持了实验观察结果。

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