Tange Masayoshi, Okazaki Toshiya, Liu Zheng, Suenaga Kazu, Iijima Sumio
National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba 305-8565, Japan.
Nanoscale. 2016 Apr 21;8(15):7834-9. doi: 10.1039/c5nr08578k.
Fluorescent materials that exhibit large Stokes shifts are useful for suppressing aggregation-caused quenching. Controlling the self-trapped exciton (STE) states in organic dyes with a dimeric structure is one way of tuning Stokes shifts. However, this leads to the spectral broadening of the emissions at room temperature owing to the effects of the surrounding materials on the excited dimers. Here, we demonstrate the effects of confining organic dyes on their optical properties via the encapsulation of perylene molecules within single-walled carbon nanotubes. The encapsulated dimeric perylene exhibits fluorescence with large Stokes shifts and long lifetimes through the STE states. In particular, a noticeable emission of dimeric perylene is observed with a vibronic structure at room temperature; this resembles the Y-type emission of dimeric α-perylene crystals observed only at low temperatures. The results suggest that the isolation of the excited perylene dimers plays an important role in the occurrence of the room-temperature Y-emission.
具有大斯托克斯位移的荧光材料可用于抑制聚集诱导猝灭。控制具有二聚体结构的有机染料中的自陷激子(STE)态是调节斯托克斯位移的一种方法。然而,由于周围材料对激发二聚体的影响,这会导致室温下发射光谱展宽。在此,我们通过将苝分子封装在单壁碳纳米管中来证明限制有机染料对其光学性质的影响。封装的二聚体苝通过STE态表现出具有大斯托克斯位移和长寿命的荧光。特别是,在室温下观察到具有振动结构的二聚体苝的明显发射;这类似于仅在低温下观察到的二聚体α-苝晶体的Y型发射。结果表明,激发的苝二聚体的隔离在室温Y发射的出现中起重要作用。