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首页> 外文期刊>RSC Advances >A bis-benzimidazole PMO ratiometric fluorescence sensor exhibiting AIEE and ESIPT for sensitive detection of Cu2+
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A bis-benzimidazole PMO ratiometric fluorescence sensor exhibiting AIEE and ESIPT for sensitive detection of Cu2+

机译:具有AIEE和ESIPT的双苯并咪唑PMO比例荧光传感器,可灵敏检测Cu2 +

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摘要

A novel bis-benzimidazole organic siloxane precursor (BBM-Si) was prepared, and was combined with tetraethylorthosilicate (TEOS) as a mixed Si source. Then, bridged periodic mesoporous organosilica (BBM-PMO) spherical nanoparticles were synthesized by co-condensation using cetyltrimethylammonium bromide (CTAB) as structure directing agent. The optical properties showed that BBM qualifies as an “aggregation induced emission enhanced” (AIEE) molecule, exhibiting characteristics of excited-state intramolecular proton transfer (ESIPT), such as a large Stokes shift and dual fluorescence emission. For the BBM-PMO materials, the silica skeleton provides a rigid environment that limits molecular rotation, resulting in improved fluorescence emission. In particular, the BBM-PMOs exhibited dual emission of the enol and keto forms, achieving a ratiometric response to Cu ~(2+) with high sensitivity and selectivity in a broad pH range. Additionally, the limit of detection was as low as 7.15 × 10 ~(?9) M in aqueous solution. The X-ray absorption near-edge spectroscopy (XANES) showed the coordination structure through the interaction between copper ions and N atoms of benzimidazole in the BBM-PMO coordinated to Cu ~(2+) . These results demonstrate that BBM-PMO hybrid materials have potential applications in the fields of bio-imaging and environmental monitoring.
机译:制备了新型的双苯并咪唑有机硅氧烷前体(BBM-Si),并与原硅酸四乙酯(TEOS)混合作为混合Si源。然后,以十六烷基三甲基溴化铵(CTAB)为结构导向剂,通过共缩合反应合成了桥联的周期性介孔有机硅球形纳米颗粒。光学性质表明,BBM符合“聚集诱导发射增强”(AIEE)分子的要求,具有激发态分子内质子转移(ESIPT)的特征,例如大的斯托克斯位移和双重荧光发射。对于BBM-PMO材料,二氧化硅骨架提供了限制分子旋转的刚性环境,从而改善了荧光发射。特别是,BBM-PMOs表现出烯醇和酮形式的双重发射,在宽的pH范围内以高灵敏度和选择性实现了对Cu〜(2+)的比例响应。另外,水溶液中的检出限低至7.15×10〜(?9)M。 X射线吸收近边缘光谱法(XANES)通过铜离子与苯并咪唑中的苯并咪唑的N原子与Cu〜(2+)配位而表现出配位结构。这些结果表明,BBM-PMO杂化材料在生物成像和环境监测领域具有潜在的应用。

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