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Color tuning of nanofibers by periodic organic-organic hetero-epitaxy

机译:通过周期性的有机-有机异质性对纳米纤维进行颜色调节

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Figure Persented: We report on the epitaxial growth of periodic para-hexaphenyl (p-6P)/α-sexi-thiophene (6T) multilayer heterostructures on top of p-6P nanotemplates. By the chosen approach, 6T molecules are forced to align parallel to the p-6P template molecules, which yields highly polarized photoluminescence (PL)-emission of both species. The PL spectra show that the fabricated multilayer structures provide optical emission from two different 6T phases, interfacial 6T molecules, and 3-dimensional crystallites. By a periodical deposition of 6T monolayers and p-6P spacers it is demonstrated that the strongly polarized spectral contribution of interfacial 6T can be precisely controlled and amplified. By analyzing the PL emission of both 6T phases as a function of p-6P spacer thickness (δd _(p-6P)) we have determined a critical value of δd _(p-6P)≈ 2.73 nm where interfacial 6T runs into saturation and the surplus of 6T starts to cluster in 3-dimensional crystallites. These results are further substantiated by UPS and XRD measurements. Moreover, it is demonstrated by morphological investigations, provided by scanning force microscopy and fluorescence microscopy, that periodical deposition of 6T and p-6P leads to a significant improvement of homogeneity in PL-emission and morphology of nanofibers. Photoluminescence excitation experiments in combination with time-resolved photoluminescence demonstrate that the spectral emission of the organic multilayer nanofibers is dominated by a resonant energy transfer from p-6P host- to 6T guest-molecules. The sensitization time of the 6T emission in the 6T/p-6P multilayer structures depends on the p-6P spacer thickness, and can be explained by well separated layers of host-guest molecules obtained by organic-organic heteroepitaxy. The spectral emission and consequently the fluorescent color of the nanofibers can be efficiently tuned from the blue via white to the yellow-green spectral range.
机译:感想的图:我们报告了在p-6P纳米模板之上周期性对六苯基(p-6P)/α-sexi-噻吩(6T)多层异质结构的外延生长。通过选择的方法,迫使6T分子与p-6P模板分子平行排列,从而产生两个物种的高度偏振光致发光(PL)发射。 PL光谱表明,所制造的多层结构提供了来自两种不同的6T相,界面6T分子和三维微晶的光发射。通过定期沉积6T单层膜和p-6P间隔基,可以证明可以精确控制和放大界面6T的强偏振光谱贡献。通过分析两个6T相的PL发射与p-6P间隔层厚度(δd_(p-6P))的函数关系,我们确定了δd_(p-6P)≈2.73 nm的临界值,其中界面6T达到饱和6T的剩余部分开始聚集在三维晶体中。 UPS和XRD测量进一步证实了这些结果。此外,通过扫描力显微镜和荧光显微镜提供的形态学研究证明,6T和p-6P的定期沉积可显着提高PL发射的均匀性和纳米纤维的形态。光致发光激发实验与时间分辨的光致发光相结合表明,有机多层纳米纤维的光谱发射主要由共振能量从p-6P主体分子到6T客体分子的转移所决定。 6T / p-6P多层结构中6T发射的敏化时间取决于p-6P间隔物的厚度,并且可以通过有机-有机异外延性获得的主体-客体分子的分离层来解释。可以将纳米纤维的光谱发射以及因此的荧光颜色从蓝色经由白色有效地调谐到黄绿色光谱范围。

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