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Optimizing Bismuth-Modified Graphene-Carbon Nanotube Composite-Coated Screen Printed Electrode for Lead-Ion Sensing through the Experimental Design Strategy

机译:优化Bismuth-Modified Graphene-Carbon纳米管Composite-Coated屏幕打印为铅离子传感电极通过实验设计策略

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摘要

A three-dimensional graphene-carbon nanotube (G-CNT) composite-coated screen printed electrode (SPE) is developed as the substrate for bismuth-modified electrodes to measure trace lead ions in this work. This G-CNT/SPE is modified with Nafion and then deposited with Bi nanoparticles, denoted as Bi/Nafion/G-CNT/SPE. Due to smooth electron pathways and effective exposure of Bi nanoparticles on G-CNT and the negative charge of Nafion, the Pb~(2+)-sensing ability of Bi/Nafion/G-CNT/SPE is over 50 times of that of a Bi-deposited SPE electrode, which can be further optimized by the experimental design strategy combining the fractional factorial design (FFD) and the steepest ascent path (SAP) studies. In the FFD study, the concentration of Nafion and pH of the stripping buffer solution are identified to be the key factors affecting the stripping current of lead pre-deposited onto Bi/Nafion/ G-CNT/SPE. From the SAP study, a simple but reliable model for increasing the lead-ion sensitivity of Bi/Nafion/G-CNT/SPE has been constructed. The highest stripping current response of lead-ion sensing on Bi/Nafion/G-CNT/SPE can be obtained when 0.3% Nafion and the stripping buffer solution with pH = 4.75 are employed.
机译:一个三维graphene-carbon纳米管(G-CNT) composite-coated丝网印刷电极(SPE)是发达的衬底bismuth-modified电极来测量微量铅离子在这工作。与电解质,然后存放在Bi纳米粒子,表示Bi /电解质/ G-CNT / SPE。由于平滑电子途径和有效的暴露的Bi G-CNT和纳米颗粒全氟磺酸的负电荷,Pb ~(2 +)敏感技术Bi /电解质/ G-CNT / SPE的能力超过50次Bi-deposited SPE电极的,可以通过实验进一步优化设计策略相结合的部分析因设计(FFD)和最大提升路径(SAP)的研究。电解质浓度和pH值的剥离缓冲溶液识别的关键当前的铅影响因素剥离pre-deposited到Bi /电解质/ G-CNT / SPE。SAP的研究中,一个简单而可靠的模型增加了铅离子的敏感性Bi /电解质/ G-CNT / SPE建造。最高剥离目前铅离子的反应遥感在Bi /电解质/ G-CNT / SPE可以获得当0.3%的全氟磺酸和剥离缓冲区解决方案与pH = 4.75。

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