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Ratiometric fluorescence detection of dopamine based on effect of ligand on the emission of Ag nanoclusters and aggregation-induced emission enhancement

机译:基于配体对Ag纳米团簇发射和聚集诱导发射增强的影响的多巴胺荧光定量检测

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摘要

For small size metal nanoclusters, it is expected that template ligand will play an essential role in regulating the properties and structure. Using histidine (His) templated Ag nanoclusters and glutathione (GSH) and dihy-drolipoic acid (DHLA) protected silver nanoclusters as models, due to the different electron donating abilities of different ligands, two silver nanoclusters with similar sizes have fluorescence emission peaks at different wavelengths. Furthermore, dopamine (DA) is a good electron donor, but is easily oxidized to dopaquinone, which can act as an electron accepter. Therefore, with addition of DA, which is easily oxidized by dissolved oxygen, the fluorescence of His-Ag nanoclusters quenches. Meanwhile, the ligands of GSH-DHLA-Ag nanoclusters contain sulfhydryl group, which has stronger reducing ability and stronger electron donating ability. Therefore, even in the presence of dopaquinone, the electron-donating effect of the ligand of the GSH-DHLA-Ag nanoclusters on the metal cores does not decrease significantly. Moreover, the addition of DA causes a certain degree of aggregation of GSH-DHLA-Ag nanoclusters, and the fluorescence intensity is enhanced due to the aggregation-inducing emission enhancement effect. Based on two types of silver nanoclusters, a ratiometric fluorescent sensor for DA analysis has been established. The linear range is 0 - 800 nM, and the limit of detection based on 38/s is 10 nM.
机译:对于小尺寸的金属纳米簇,预期模板配体将在调节性质和结构中起重要作用。使用组氨酸(His)模板化的Ag纳米簇和谷胱甘肽(GSH)和二氢硫辛酸(DHLA)保护的银纳米簇作为模型,由于不同配体的供电子能力不同,两个尺寸相似的银纳米簇在不同的位置具有荧光发射峰波长。此外,多巴胺(DA)是良好的电子供体,但容易被氧化为多巴醌,可以用作电子受体。因此,通过添加易于被溶解氧氧化的DA,His-Ag纳米团簇的荧光猝灭。同时,GSH-DHLA-Ag纳米簇的配体含有巯基,具有更强的还原能力和更强的供电子能力。因此,即使在存在多巴醌的情况下,GSH-DHLA-Ag纳米簇的配体对金属核的供电子作用也不会显着降低。而且,DA的添加引起GSH-DHLA-Ag纳米簇的一定程度的聚集,并且由于聚集诱导的发射增强作用而增强了荧光强度。基于两种类型的银纳米簇,已经建立了用于DA分析的比例荧光传感器。线性范围为0-800 nM,基于38 / s的检测极限为10 nM。

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