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Intrinsic Ultralow-Threshold Laser Action from Rationally Molecular Design of Metal-Organic Framework Materials

机译:基于金属 - 有机框架材料的合理分子设计的内在超级阈值激光作用

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Metal-organic frameworks (MOFs) are superior for multiple applications including drug delivery, sensing, and gas storage because of their tunable physiochemical properties and fascinating architectures. Optoelectronic application of MOFs is difficult because of their porous geometry and conductivity issues. Recently, a few optoelectronic devices have been fabricated by a suitable design of integrating MOFs with other materials. However, demonstration of laser action arising from MOFs as intrinsic gain media still remains challenging, even though some studies endeavor on encapsulating luminescence organic laser dyes into the porous skeleton of MOFs to achieve laser action. Unfortunately, the aggregation of such unstable laser dyes causes photoluminescence quenching and energy loss, which limits their practical application. In this research, unprecedently, we demonstrated ultralow-threshold (similar to 13 nJ/cm(2)) MOF laser action by a judicious choice of metal nodes and organic linkers during synthesis of MOFs. Importantly, we also demonstrated that the white random lasing from the beautiful microflowers of organic linkers possesses a porous network, which is utilized to synthesize the MOFs. The highly luminescent broad-band organic linker 1,4-NDC, which itself exhibits a strong white random laser, is used not only to achieve the stimulated emission in MOFs but also to reduce the lasing threshold. Such white lasing has multiple applications from bioimaging to the recently developed versatile Li-Fi technology. In addition, we showed that the smooth facets of MOF microcrystals can show Fabry-Perot resonant cavities having a high quality factor of similar to 10(3) with excellent photostability. Our unique discovery of stable, nontoxic, high-performance MOF laser action will open up a new route for the development of new optoelectronic devices.
机译:金属有机框架(MOFS)优于多种应用,包括药物递送,传感和储气,因为它们可调谐物理化学性质和迷人的架构。由于其多孔几何形状和电导率问题,MOF的光电应用很难。最近,通过将MOF与其他材料集成的合适设计来制造了几种光电器件。然而,即使内在增益介质的MOFS引起的激光动作的证明仍然仍然具有挑战性,尽管一些研究致力于将发光有机激光染料封装到MOF的多孔骨架中以实现激光作用。不幸的是,这种不稳定的激光染料的聚集导致光致发光淬火和能量损失,这限制了它们的实际应用。在这项研究中,难以置信地,我们通过在合成MOF的合成期间,通过明智地选择MET MED节点和有机接头的明智选择来证明超级阈值(类似于13 nJ / cm(2))MOF激光作用。重要的是,我们还证明了来自有机连接器的美丽微射线的白色随机激光具有多孔网络,其用于合成MOF。高发光的宽带有机连接器1,4-NDC本身表现出强白色随机激光,不仅用于实现MOF中的刺激,而且还用于降低激光阈值。这种白色激活有多种应用从BioMaging到最近开发的多功能Li-Fi技术。此外,我们表明MOF微晶的光滑刻面可以显示具有高品质因子的法布里 - 珀罗共振腔,其具有与10(3)的具有优异的光稳定性。我们独特的稳定发现,无毒,高性能的MOF激光动作将开辟新的光电器件开发的新路线。

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