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A highly emissive AIE-active luminophore exhibiting deep-red to near-infrared piezochromism and high-quality lasing

机译:一种高度发光的AIE活跃的发光体,对近红外压力化和高品质激光展示深红色

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Further development of high-efficiency and low-cost organic fluorescent materials is intrinsically hampered by the energy gap law and spin statistics, especially in the near-infrared (NIR) region. Here we design a novel building block with aggregation-induced emission (AIE) activity for realizing highly efficient luminophores covering the deep-red and NIR region, which originates from an increase in the orbital overlap and electron-withdrawing ability. An organic donor–acceptor molecule ( BPMT ) with the building block is prepared and can readily form J-type molecular columns with multiple C–H?N/O interactions. Notably, such synthesized materials can emit fluorescence centered at 701 nm with extremely high photoluminescence quantum yields (PLQYs) of 48.7%. Experimental and theoretical investigations reveal that the formation of the hybridized local and charge-transfer (HLCT) state and substantial C–H?N/O interactions contribute to a fast radiative decay rate and a slow nonradiative decay rate, respectively, resulting in high PLQYs in the solid state covering the NIR range. Remarkably, such BPMT crystals, as a first example, reveal strong-penetrability piezochromism along with a distinct PL change from the deep-red ( λ _(max) = 704 nm) to NIR ( λ _(max) = 821 nm) region. Moreover, such typical AIE-active luminophores are demonstrated to be a good candidate as a lasing medium. Together with epoxy resin by a self-assembly method, a microlaser is successfully illustrated with a lasing wavelength of 735.2 nm at a threshold of 22.3 kW cm ~(?2) . These results provide a promising approach to extend the contents of deep-red/NIR luminophores and open a new avenue to enable applications ranging from chemical sensing to lasing.
机译:进一步发展高效和低成本的有机荧光材料的内部受到能量差距法和旋转统计,特别是在近红外(NIR)区域。在这里,我们设计了一种具有聚集诱导的发射(AIE)活性的新型建筑块,用于实现覆盖深红色和NIR区域的高效发光体,这些光电源自轨道重叠和电子提取能力的增加。制备具有结构块的有机供体 - 受体分子(BPMT),并且可以容易地形成具有多个C-H·N / O相互作用的J型分子塔。值得注意的是,这种合成的材料可以在701nm处发射荧光,具有48.7%的极高的光致发光量子产率(PlQys)。实验和理论研究表明,杂交的局部和电荷转移(HLCT)状态和大量C-H?N / O相互作用的形成分别有助于快速辐射衰减率和缓慢的非衰减率,导致高plqys在覆盖NIR范围的固态中。值得注意的是,这种BPMT晶体作为第一示例,揭示了强渗透性压力的压力,以及从深红色(λ_(max)= 704nm)到nir(λ_(max)= 821nm)区域的不同的pl变化。此外,这种典型的AIE活性发光体被证明是作为激光介质的良好候选者。通过自组装方法与环氧树脂一起,在阈值为22.3kW cm〜(α2)的阈值下,成功地示出了微橡胶瓶。这些结果提供了一种有希望的方法来扩展深红色/鼻子发光小孔的内容,并开设新的途径,以使应用范围从化学感测到激光。

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