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用于水中铝离子选择性检测的基于荧光团的功能材料的合成及其水溶胶聚集诱导发光特性的解析

Synthesis of Fluorophore Based Functional Material for Selective Detection of Al Ion in Water and Decoding the AIEE Property of Its Hydrosol.

作者信息

Giri Prabhat Kumar, Samanta Shashanka Shekhar, Mudi Naren, Mandal Usha, Misra Ajay

机构信息

Department of Chemistry, Vidyasagar University, Midnapore, 721102, West Bengal, India.

出版信息

J Fluoresc. 2023 Nov;33(6):2131-2144. doi: 10.1007/s10895-023-03238-8. Epub 2023 Apr 15.

Abstract

A designed aggregation-induced emission enhancement (AIEE) active fluorescence probe 2,3-Bis-[(2-hydroxy-napthalen-1-ylmethylene)-amino]-but-2-enedinitrile (L) was synthesized via one step condensation method. The probe shows swift sensitivity and selectivity toward Alover other relevant metal ions and also exhibits significant AIEE phenomena in methanol/water mixture. Significant enhancement of fluorescence intensity is triggered via chelation-enhanced fluorescence through complex (Al-L) formation. A 2:1 metal to ligand ratio is observed from Job's plot based on UV - Vis absorption titration and detection limit (LOD) is found as low as 31.14 nM. Moreover, 1H NMR titrations and fluorescence reversibility by adding Al and EDTA sequentially had been performed to establish the binding site of sensor complex (Al-L). Time-resolved photoluminescence, dynamic light scattering, optical microscopy, and on-site visualization studies have been performed to understand the AIEE mechanism of L in different volume percentage of water and methanol mixture. An INHIBIT molecular logic gate has been constructed utilizing the fluorescence behavior of the probe, L in presence of Al and strong chelating ligand EDTA.

摘要

通过一步缩合方法合成了一种设计的聚集诱导发射增强(AIEE)活性荧光探针2,3-双-[(2-羟基萘-1-基亚甲基)-氨基]-丁-2-烯二腈(L)。该探针对铝比对其他相关金属离子表现出快速的灵敏度和选择性,并且在甲醇/水混合物中也表现出显著的AIEE现象。通过形成配合物(Al-L)的螯合增强荧光触发荧光强度的显著增强。基于紫外-可见吸收滴定的Job曲线观察到金属与配体的比例为2:1,检测限低至31.14 nM。此外,还进行了1H NMR滴定以及通过依次添加铝和乙二胺四乙酸(EDTA)进行荧光可逆性研究,以确定传感器配合物(Al-L)的结合位点。进行了时间分辨光致发光、动态光散射、光学显微镜和现场可视化研究,以了解L在不同体积百分比的水和甲醇混合物中的AIEE机制。利用探针L在铝和强螯合配体EDTA存在下的荧光行为构建了一个“抑制”分子逻辑门。

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