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Space-confined indicator displacement assay inside a metal–organic framework for fluorescence turn-on sensing

机译:金属-有机框架内的空间受限指示器位移测定法用于荧光开启感应

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摘要

The indicator displacement assay (IDA) is for the first time performed within a metal–organic framework (MOF) to achieve ultrasensitive fluorescence turn-on sensing. A Zr(iv) ion MOF (UiO-67-DQ–PsO) furnished with electron-deficient diquat units (DQ2+, as the receptor) on the wall and electron-rich 1-pyrenesulfonate anions (PsO, as the fluorescent indicator) in the pores was prepared by postsynthetic anion exchange. The MOF is capable of sensing alkylamines owing to the competing PsO–DQ2+ and alkylamine–DQ2+ charge-transfer interactions, the former interaction causing a fluorescence OFF state and the latter displacing PsO to trigger its emission. Significant advantages have been demonstrated for the IDA inside the MOF. The turn-on assay exhibits much higher sensitivity and anti-interference than the turn-off sensing using the MOF without indicators (the sensitivity is enhanced by as much as six orders of magnitude to the subnanomolar level). The integration of both the receptor and indicator in the porous solid enables facile regeneration and recyclability of the IDA ensemble. Furthermore, we show that the confined space provided by the MOF significantly enhances the supramolecular interactions to make possible the IDA impossible in solution. This work not only demonstrates a novel conceptual approach to fabricate superior fluorescence turn-on sensors using porous materials but also has important implications for supramolecular chemistry in porous materials.
机译:指示剂位移分析(IDA)首次在金属有机框架(MOF)中进行,以实现超灵敏的荧光开启感应。 Zr(iv)离子MOF(UiO-67-DQ–PsO),壁上配备有缺电子的敌草快单元(DQ 2 + 作为受体)和富含电子的1-丙酮磺酸根阴离子通过合成后阴离子交换制备毛孔中的(PsO ,作为荧光指示剂)。由于竞争的PsO –DQ 2 + 和烷基胺–DQ 2 + 电荷转移相互作用,MOF能够检测烷基胺。前者相互作用导致荧光关闭状态,而后者取代PsO 触发其发射。 MOF内部的IDA已显示出显着的优势。与使用无指示剂的MOF进行关闭检测相比,开启检测具有更高的灵敏度和抗干扰性(灵敏度提高到亚纳摩尔水平多达六个数量级)。受体和指示剂两者在多孔固体中的整合使得IDA集合体易于再生和再循环。此外,我们表明由MOF提供的有限空间显着增强了超分子相互作用,从而使IDA不可能在溶液中进行。这项工作不仅证明了使用多孔材料制造优异的荧光开启传感器的新颖概念方法,而且对多孔材料中的超分子化学也具有重要意义。

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