Department of Physics, Quantum Metamaterial Research Center, Ewha Womans University , Seoul 03760, South Korea.
Aix Marseille Univ, CNRS, CINaM UMR 7325, Campus de Luminy , Case 913, 13288 Marseille, France.
Nano Lett. 2018 Feb 14;18(2):1476-1482. doi: 10.1021/acs.nanolett.7b05276. Epub 2018 Jan 30.
Metallic nanostructures permit controlling various photophysical processes by coupling photons with plasmonic oscillation of electrons confined in the tailored nanostructures. One example is hyperbolic metamaterial (HMM) leading to an enhanced spontaneous emission rate of emitters located nearby. Noting that emission in organic molecules is from either π-π* or intramolecular charge-transfer (ICT) states, we address here how HMM modifies ICT emission spectral features by comparing them with a spectral shift dependent on the local polarity of the medium. The 7.0 nm blue shift is observed in ICT emission from 4-dicyanomethylene-2-methyl-6-(p-dimethylaminostyryl)-4H-pyran dispersed into a polymer matrix prepared on HMM multilayered structure, while no spectral shift is observed in π-π* emission from perylene diimide. In the frame of the Lippert-Mataga formalism, the blue shift is explained by the HMM nonlocal effects resulting from 8% decrease in refractive index and 18% reduction in dielectric permittivity. This phenomenon was also shown in a hemicurcuminoid borondifluoride dye yielding 15.0 nm blue shift. Such a capability of spectral shift control in films by HMM structure opens new prospects for engineering organic light-emitting devices.
金属纳米结构通过将光子与限制在定制纳米结构中的电子的等离子体振荡耦合,允许控制各种光物理过程。一个例子是双曲超材料(HMM),它导致位于附近的发射器的自发发射速率增强。注意到有机分子的发射要么来自π-π或分子内电荷转移(ICT)态,我们在这里通过将它们与依赖于介质局部极性的光谱位移进行比较,来研究 HMM 如何修饰 ICT 发射光谱特征。在分散在聚合物基质中的 4-二氰基亚甲基-2-甲基-6-(对二甲氨基苯乙烯基)-4H-吡喃的 ICT 发射中观察到 7.0nm 的蓝移,而在聚酰亚胺二酰亚胺的 π-π发射中没有观察到光谱位移。在 Lippert-Mataga 形式主义的框架内,蓝移是由 HMM 非局部效应引起的,折射率降低 8%,介电常数降低 18%。在硼二氟染料hemicurcuminoid 中也观察到了这种现象,产生了 15.0nm 的蓝移。HMM 结构在薄膜中控制光谱位移的这种能力为工程有机发光器件开辟了新的前景。