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Electron-Transfer Rate in Potential-Modulated Redox Reactions with Electro-Active Optical Waveguides

机译:电有源光波导在电势调制氧化还原反应中的电子传输速率

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A novel methodology has been developed to determine electron-transfer rate in electrically driven redox reactions. Based on a widely adopted electrical circuit describing faradaic processes in an electrochemical cell, the approach uses a combination of impedance data from optical and electrical measurements that are simultaneously acquired in a spectroelectrochemical experiment. Once the consistency of our methodology was experimentally corroborated, it was put to practice for investigating electron-transfer rate of cytochrome c adsorbates at very low concentrations on an indium tin oxide electrode by using a highly sensitive, single-mode, electro-active, integrated optical waveguide platform. Different surface densities of redox species on the electrode interface and different ionic strengths in the electrolyte solution were studied. Higher surface densities and higher ionic strengths are shown to slow down the electron-transfer process between the redox molecules and the working electrode.
机译:已经开发出一种新颖的方法来确定电驱动的氧化还原反应中的电子转移速率。基于一种广泛采用的描述电化学电池中法拉第过程的电路,该方法使用了来自光学和电学测量的阻抗数据的组合,这些数据是在光谱电化学实验中同时获取的。一旦通过实验证实了我们方法的一致性,便可以通过使用高灵敏度,单模式,电活性,集成化的方法,研究用于以非常低的浓度在氧化铟锡电极上吸附细胞色素C的电子传递速率。光波导平台。研究了电极界面上氧化还原物质的不同表面密度和电解质溶液中不同的离子强度。已显示较高的表面密度和较高的离子强度会减慢氧化还原分子和工作电极之间的电子转移过程。

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