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PEDOT:PSS macroporous electrode for electrochemical analysis of bacterial messengers

机译:PEDOT:PSS大孔电极用于细菌传道人的电化学分析

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Introduction: Early identification of pathogens is one of the main challenging clinical issue today to enhance patient care and to better control antibiotic use. Currently, diagnosis is mainly based on microbiological culture of the body fluids. But this method is too long and the therapeutic decision frequently has to be done in phase advance with respect to microbiological results. Recently, researchers became interested in detecting of electrochemically active molecules secreted by bacteria. Electrochemistry has several advantages: it allows quick and in situ analysis and is easy and cheap to integrate. Today, the main limitations in electrochemical bacteria detection is the sensitivity of the system, which is not good enough for quick detection in real conditions. The herein work addresses this drawback by fabricating macroporous electrode as a matrix to bacteria growth (see Figure 1.). The aim is dual: expanding active surface to increase signal amplitude and enhancing the metabolites collection by bacteria confinement. Macroporous electrodes of the conductive-polymer poly(3,4-ethylenedioxythiophene):polystyrene sulfonate (PEDOT:PSS), known to be biocompatible, was made by freeze-drying. Figure 1. Schematic view of the project detection tool Materials and Methods: The macroporous electrode is obtained by freeze-drying aqueous dispersion of PEDOT:PSS PH1000 from Clevios? with different proportions of (3-Glycidyloxypropyl)trimethoxysilane (GOPS) and Dodecylbenzenesulfonic acid (DBSA) as additives from Sigma-Aldrich. SEM, conductivity by Transfer Length Method (TLM) test pattern and electrochemical studies were performed on the material. Results and Discussion: Morphology: The obtained macroporous material looks like a soft dark blue foam (see Figure 2. a.). SEM observations show that pores are rather well-defined and well-organized (see Figure 2. b.). The electrodes exhibit typical pore size of 40 ± 10 μm that is much bigger than bacteria size (1-2μm). This size is supposed to be sufficiently large to allow bacteria growth inside the electrode and nutriments diffusion. figure 2. a. Picture, b. SEM image of the PEDOT:PSS macroporous electrode Conductivity: Macroporous electrodes show good conductivity around 5.10~(-2) S/cm. This value allows electrochemical measurements. Electrochemical analysis: Voltammograms obtained with cyclic voltammetry technics show that the macroporous electrode has a great electrochemical behavior (see Figure 3.). Capacitive current is similar between our 3D macroporous electrode and planar one with similar volume and composition. As PEDOT:PSS is known to have a volume capacitance, this result confirms that whole the 3D electrode is electrically connected. figure 3. Comparative cyclic voltammetry curves of planar and 3D PEDOT:PSS electrodes Conclusion: We have successfully fabricated an electrochemically functional macroporous electrode on PEDOT:PSS. This electrode exhibits good morphology and electrochemical characteristics that meet all the requirements associated to our project. Microbiological tests, including test of bacteria colonization of the electrode, will be done in the near future.
机译:介绍:早期鉴定病原体是当今主要挑战性的临床问题之一,以增强患者护理并更好地控制抗生素使用。目前,诊断主要基于体液的微生物培养。但是这种方法太长,并且经常常见的治疗决定相对于微生物结果已经进入。最近,研究人员对检测细菌分泌的电化学活性分子感兴趣。电化学有几个优点:它允许快速和原位分析,易于整合。如今,电化学细菌检测的主要局限性是系统的敏感性,这对于在真实条件下快速检测不足以足够好。本文的工作通过将大孔电极作为基质的基质制造成基质来解决该缺点(参见图1.)。目的是双重:扩展活性表面以增加信号幅度并通过细菌监禁增强代谢物收集。通过冷冻干燥制备了导电聚合物聚(3,4-亚乙二氧基噻吩)的大孔电极(3,4-亚乙二醇噻吩):已知是生物相容性的聚苯乙烯磺酸盐(PEDOT:PSS)。图1.项目检测工具的示意图和方法:通过脱脂干燥水分散体获得的大孔电极:PSS pH1000来自Clevios?用不同比例的(3-酰甲氧基丙基)三甲氧基硅烷(GOP)和十二烷基苯磺酸(DBSA)作为Sigma-Aldrich的添加剂。通过转移长度法(TLM)测试模式和电化学研究进行SEM,对材料进行电导率。结果与讨论:形态学:所获得的大孔材料看起来像一个柔和的深蓝色泡沫(见图2. a。)。 SEM观察结果表明,孔隙是相当明确的和组织良好的(见图2. b。)。电极显示出40±10μm的典型孔径,比细菌大小大得多(1-2μm)。这种尺寸应该足够大,以允许细菌在电极内的生长和营养素扩散。图2. a。图片,b。 PECOT的SEM图像:PSS大孔电极电导率:大孔电极显示出良好的导电性约为5.10〜(-2)S / cm。该值允许电化学测量。电化学分析:用循环伏安法获得的伏安图显示,大孔电极具有很大的电化学行为(参见图3)。电容电流在我们的3D大孔电极和平面具有相似的体积和组成之间的平面。作为PEDOT:已知PSS具有体积电容,该结果证实整个3D电极电连接。图3.平面和3D PEDOT的比较循环伏安法曲线:PSS电极结论:我们在PEDOT上成功制造了电化学功能大孔电极:PSS。该电极表现出良好的形态和电化学特征,满足与我们的项目相关的所有要求。微生物试验,包括电极的细菌定植测试,将在不久的将来进行。

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