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Redox behavior of eumelanin derivates for bioelectronics

机译:Eumelanin衍生物对生物电子的氧化还原行为

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Eumelanins are an important class of the natural pigments with attractive physicochemical properties such as photoprotection and thermoregulation. Unfortunately, eumelanins are poorly insoluble in several common solvents making challenging the deposition of thin films for device applications. To improve their solubility, eumelanins derivatives have been synthetized using organic solvents such as DMSO (D-eumelanin) by incorporating sulfonate groups (-SO2CH3) in the phenolic hydroxyl positions of DHI (5,6-dihydroxyindole) and DHICA (5,6-dihydroxyindole-2-carboxylic acid) eumelanin building blocks. To shed light onto the transport properties in D-eumelanin, in view of applications in bioelectronics, we performed a systematic study of the redox processes in D-eumelanin, synthetized at room temperature (RT) and at 100°C, by cyclic voltammetry (CV, using eumelanin on carbon paper as work electrode, platinum wire as the counter electrode, and aqueous ammonium acetate at pH 5.5 as the electrolyte, different cycle numbers and 5,10, and 50 mV/s scan rates were conducted). Sigma eumelanin was used as our control material. D-eumelanin synthetized at RT and at 100 °C showed an intense oxidation peak 0.4 V with well-defined character and a reduction peak around 0.25 V. After five cycles, a capacitive behavior was dominant. An intense and irreversible oxidation peak, located at about 0.5 V was observed for Sigma eumelanin. The irreversible peak for the Sigma eumelanin has been interpreted as resulting from the covalent coupling of intermediate species forming at the positive electrode interface. The peaks for the D-eumelanins are attributable to the hydroquinone/semiquinone/quinone redox species which exhibited an increased in the reversibility when the scan rate is increased. Raman spectroscopy revealed that there is no significant change in the molecular structure after the CVs except for the soufonate groups and hydroxyls. No significant difference was detected between D-eumelanin synthetized RT and 100°C from the electrochemical and structural point of view. Based on the stability observed upon electrochemical tests, D-eumelanin has a good potential for applications in bioelectronics.
机译:Eumelanins是一类重要的天然色素,具有诱人的理化性质,例如光保护和温度调节。不幸的是,木兰素在几种普通溶剂中难溶,这对用于设备应用的薄膜沉积提出了挑战。为了提高其溶解度,已通过在DHI(5,6-二羟基吲哚)和DHICA(5,6-二羟基吲哚-2-羧酸)的Eumelanin结构单元。为了阐明D-双美仑素的传输特性,鉴于其在生物电子学中的应用,我们对D-双美白素在室温(RT)和100°C下通过循环伏安法合成的氧化还原过程进行了系统研究( CV,使用碳纸上的朱兰素作为工作电极,铂丝作为对电极,并使用pH 5.5的乙酸铵水溶液作为电解质,分别进行不同的循环次数和5,10和50 mV / s的扫描速率。 Sigma eumelanin被用作我们的对照材料。在室温和100°C时合成的D-榄香精显示强氧化峰0.4 V,具有明确的特征,还原峰在0.25 V附近。五个循环后,电容行为占主导。对于Sigma Eumelanin,观察到一个强烈且不可逆的氧化峰,位于约0.5V。 Sigma Eumelanin的不可逆峰被解释为是由于在正极界面处形成的中间物种的共价偶联所致。 D-庚二烯的峰可归因于对苯二酚/半醌/醌氧化还原物质,当扫描速率增加时,可逆性增加。拉曼光谱显示,CV后分子结构没有明显变化,除了磺酸盐基团和羟基。从电化学和结构的观点来看,D-双聚乙二醇合成的RT与100℃之间没有发现显着差异。基于电化学测试中观察到的稳定性,D-榄香精具有在生物电子领域中应用的良好潜力。

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