Resta Vincenzo, Camposeo Andrea, Montinaro Martina, Moffa Maria, Kazlauskas Karolis, Jursenas Saulius, Tomkeviciene Ausra, Grazulevicius Juozas V, Pisignano Dario
Opt Express. 2017 Oct 2;25(20):24604-24614. doi: 10.1364/OE.25.024604.
Complex assemblies of light-emitting polymer nanofibers with molecular materials exhibiting optical gain can lead to important advance to amorphous photonics and to random laser science and devices. In disordered mats of nanofibers, multiple scattering and waveguiding might interplay to determine localization or spreading of optical modes as well as correlation effects. Here we study electrospun fibers embedding a lasing fluorene-carbazole-fluorene molecule and doped with titania nanoparticles, which exhibit random lasing with sub-nm spectral width and threshold of about 9 mJ cm for the absorbed excitation fluence. We focus on the spatial and spectral behavior of optical modes in the disordered and non-woven networks, finding evidence for the presence of modes with very large spatial extent, up to the 100 µm-scale. These findings suggest emission coupling into integrated nanofiber transmission channels as effective mechanism for enhancing spectral selectivity in random lasers and correlations of light modes in the complex and disordered material.
由具有光学增益的分子材料构成的发光聚合物纳米纤维复合组件,可为非晶光子学以及随机激光科学与器件带来重要进展。在纳米纤维的无序毡中,多重散射和波导可能相互作用,以确定光学模式的局域化或扩展以及相关效应。在此,我们研究了嵌入激光芴-咔唑-芴分子并掺杂二氧化钛纳米颗粒的电纺纤维,这些纤维表现出随机激光发射,其光谱宽度小于1纳米,吸收激发通量的阈值约为9毫焦/平方厘米。我们关注无序和非织造网络中光学模式的空间和光谱行为,发现存在空间范围非常大、可达100微米尺度的模式的证据。这些发现表明,发射耦合到集成纳米纤维传输通道是增强随机激光器光谱选择性以及复杂无序材料中光模式相关性的有效机制。