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一种基于多种荧光发射机制的用于在水溶液中灵敏检测 Cu 的“关-开-关”荧光化学传感器。

An "off-on-off" fluorescence chemosensor for the sensitive detection of Cu in aqueous solution based on multiple fluorescence emission mechanisms.

机构信息

Key Lab of Colloid and Interface Chemistry Ministry of Education, School of Chemistry and Chemical Engineering, Shandong University, Jinan 250100, P. R. China.

出版信息

Analyst. 2021 Apr 26;146(8):2670-2678. doi: 10.1039/d0an02472d.

Abstract

A new organosiloxane precursor ((E)-3-hydroxy-4-((2-(2-hydroxy-4-(3-(3-(triethoxysilyl)propyl)ureido)benzoyl)hydrazono)methyl)phenyl(3-(triethoxysilyl)propyl)carbamate, hereinafter referred to as AHBH-Si) and tetraethylorthosilicate (TEOS) were mixed as the mixed Si source, and bridged periodic mesoporous organic silica (AHBH-PMOs) nanoparticles were obtained through the co-condensation reaction. AHBH-PMO nanoparticles possess mechanisms of "Aggregation Induced Emission" (AIE) and "Intramolecular Charge Transfer" (ICT), which originate from the molecular structure of AHBH having "C[double bond, length as m-dash]N" bond, ortho hydroxyl groups, etc.. Therefore, the optical properties of AHBH are excellent with respect to the solvent effect and enhanced fluorescence. For hybrid materials, the silica framework provides a rigid environment that restricts the rotation of AHBH, thereby turning on the fluorescence of AHBH due to the regulation by the AIE effect. In particular, AHBH-PMOs are no longer restricted by organic solvents and could really achieve the response to Cu2+ with high sensitivity and selectivity in aqueous solutions of a wide pH range. In addition, the detection limit is as low as 3.26 × 10-9 M. Methods such as Fourier transform infrared spectroscopy, proton nuclear magnetic resonance spectroscopy, and high-resolution mass spectrometry have shown the coordination interaction between AHBH and Cu2+. The Gaussian 09 software of density functional theory to calculate the reducing changes of energy gaps among AHBH and AHBH-Si before and after the addition of Cu2+ showed that coordination interaction exists in the system. These results indicate that AHBH-PMO hybrid materials have potential applications in the field of environmental monitoring.

摘要

一种新型的有机硅氧烷前体((E)-3-羟基-4-((2-(2-羟基-4-(3-(3-(三乙氧基硅基)丙基)脲基)苯甲酰基)亚肼基)甲基)苯基(3-(三乙氧基硅基)丙基)氨基甲酸酯,以下简称 AHBH-Si)和正硅酸乙酯(TEOS)被混合作为混合硅源,通过共缩合反应得到桥联周期性介孔有机硅( AHBH-PMOs)纳米粒子。AHBH-PMO 纳米粒子具有“聚集诱导发光”(AIE)和“分子内电荷转移”(ICT)的机制,这源于 AHBH 分子结构中的“C[双键,长度为 m-dash]N”键、邻位羟基等。因此,AHBH 的光学性质对溶剂效应和增强荧光具有优异的效果。对于杂化材料,硅骨架提供了一个刚性的环境,限制了 AHBH 的旋转,从而由于 AIE 效应的调节,使 AHBH 的荧光开启。特别是,AHBH-PMO 不再受到有机溶剂的限制,在很宽的 pH 范围的水溶液中可以真正实现对 Cu2+的高灵敏度和选择性响应。此外,检测限低至 3.26×10-9 M。傅里叶变换红外光谱、质子核磁共振波谱和高分辨率质谱等方法表明了 AHBH 与 Cu2+之间的配位相互作用。密度泛函理论的 Gaussian 09 软件计算了添加 Cu2+前后 AHBH 和 AHBH-Si 的能隙减小变化,表明体系中存在配位相互作用。这些结果表明 AHBH-PMO 杂化材料在环境监测领域具有潜在的应用。

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