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Fluorescence Quenching upon Binding of Copper Ions in Dye-Doped and Ligand-Capped Polymer Nanoparticles: A Simple Way to Probe the Dye Accessibility in Nano-Sized Templates

机译:染料淬灭和配体封端的聚合物纳米粒子中铜离子结合后的荧光猝灭:探测纳米尺寸模板中染料可及性的简单方法

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The synthesis and properties of well-defined core-shell type fluorescent metal-chelating polymer nanoparticles NP, in the 15 nm diameter range, with a fluorophore (9,10-diphenylanthracene: DPA) entrapped in the particle core and a selective ligand (1,4,8,11-tetraazacyclotetradecane: Cyclam), grafted onto the surface are presented. NPs with different number of dye-per-par-ticle are readily obtained by entrapment of the fluorophore within the polymer core. The ligand-coated NPs exhibit a high affinity for Cu~(2+) ions in aqueous solution and quenching of the DPA fluorescence is observed upon binding of copper. The quenching of fluorescence arises through energy transfer (FRET) from the dye to the copper-cyclam complexes that form at the NP surface with an operating distance (d) in the 2 nm range. A simple core-shell model accounts for the steady-state and time-resolved fluorescence titration experiments: dye molecules located in the outer sphere (thickness d) of the NPs are quenched while the fluorescence of dyes embedded more deeply is not affected by the binding of copper ions. The observed high quenching efficiency (60-65 %), which is tightly correlated to the volumic and microstructural features of the NPs, shed light on the enhanced accessibility inherent in nano-sized templates. The response towards different metal ions was investigated and this confirmed the selectivity of the nanoparticle template-assembled sensor for cupric ions.
机译:直径为15 nm的定义明确的核-壳型荧光金属螯合聚合物纳米颗粒NP的合成和性能,其中荧光团(9,10-diphenylanthracene:DPA)包裹在颗粒核中并具有选择性配体(1提出了接枝到表面上的(4,8,11-四氮杂环十四烷:Cyclam)。通过将荧光团截留在聚合物核中,可以很容易地获得每微粒染料数量不同的NP。配体包覆的NPs对水溶液中的Cu〜(2+)离子具有很高的亲和力,并且在结合铜后观察到DPA荧光猝灭。荧光的猝灭是通过能量转移(FRET)从染料到在2 nm范围内的工作距离(d)形成于NP表面的铜环素络合物形成的。一个简单的核-壳模型说明了稳态和时间分辨荧光滴定实验:位于NPs外球(厚度d)的染料分子被淬灭,而更深层嵌入的染料的荧光不受结合的影响铜离子。观察到的高淬灭效率(60-65%)与NP的体积和微结构特征紧密相关,这揭示了纳米尺寸模板固有的增强可及性。研究了对不同金属离子的响应,这证实了纳米颗粒模板组装传感器对铜离子的选择性。

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