精确限制金属-有机骨架中苯环旋转的超灵敏比荧光检测沙林

IF 13.7 Q1 CHEMISTRY, MULTIDISCIPLINARY
Cong Lyu, Chuanfang Zhao, Meimei Wang, Jiawen Li, Zhenzhen Cai, Xincun Dou, Baiyi Zu
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引用次数: 0

摘要

为了实现对沙林的高灵敏度和特异性传感,探索了一种含π共轭有机配体H4CTTB(4,4′,4″,4′-(9h -咔唑-1,3,6,8-四基)四苯甲酸)的Eu(III)基金属-有机骨架(Eu- cttb - mof)用于比例荧光传感。在盐酸干扰下,对神经毒剂沙林模拟物氯磷酸二乙酯(DCP)的特异性识别达到了前所未有的低检测限(LOD, 20.97 nM)。这种优异的检测性能是由于CTTB有机配体与DCP之间的双氢键和疏水相互作用导致CTTB配体的分子构型发生了巨大变化。密度泛函理论(DFT)计算进一步验证了Eu-CTTB-MOF对DCP的识别可以抑制CTTB配体中芳香环的旋转,显著减少CTTB配体的非辐射衰变途径,从而增强CTTB配体的荧光强度。特别是,Eu-CTTB-MOF即使在HCl蒸汽、结构类似物和挥发性有机溶剂等18种干扰存在的情况下,也能对DCP蒸汽做出即时响应,对DCP具有优异的特异性,并且可以在模拟场景中精确检测DCP气体探测器,使所设计的MOF成为一种有前景的实际场景传感材料。我们期望当前的传感策略将为现场检测应用的全新传感材料的开发带来光明。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Exactly Restricting the Phenyl Ring Rotation in Metal-Organic Framework for Ultra-Sensitive and Specific Ratiometric Fluorescent Sensing of Sarin

Exactly Restricting the Phenyl Ring Rotation in Metal-Organic Framework for Ultra-Sensitive and Specific Ratiometric Fluorescent Sensing of Sarin

To realize highly sensitive and specific sensing toward sarin, an Eu(III) based metal-organic framework (Eu-CTTB-MOF), encompassing a π-conjugated organic ligand H4CTTB (4,4′,4″,4‴-(9H-carbazole-1,3,6,8-tetrayl)tetrabenzoic acid) was explored for ratiometric fluorescent sensing. An unprecedented specific recognition of nerve-agent sarin mimic diethyl chlorophosphate (DCP) in the presence of HCl interferent and a low limit of detection (LOD, 20.97 nM) were achieved. This excellent detection performance is driven by the dual hydrogen bonding and hydrophobic interaction between the CTTB organic ligand and DCP, which would cause a dramatic change in the molecular configuration of the CTTB ligand. Density functional theory (DFT) calculations further verify the recognition of DCP by Eu-CTTB-MOF could suppress the rotations of the aromatic rings in CTTB ligand, significantly reducing the nonradiative decay pathways and subsequently enhancing the fluorescent intensity of the CTTB ligand. Especially, the Eu-CTTB-MOF enables the immediate response to DCP vapor and excellent specificity towards DCP even in the presence of 18 types of interferents, including HCl vapor, structural analogs, and volatile organic solvent, and a gas detector with accurate detection of DCP in simulated scenarios, positioning the designed MOF as a promising sensing material for practical scenarios. We expect that the present sensing strategy will shine a light on the development of brand-new sensing materials for on-site detection applications.

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CiteScore
17.40
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