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The Scaling of Electrochemical Parameters of DNA Aqueous Solutions with Concentration and Temperature Through an Electrochemical Impedance Spectroscopy Study

机译:DNA水溶液的电化学参数随浓度和温度的变化通过电化学阻抗谱研究

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In this work, Electrochemical Impedance Spectroscopy (EIS) is used to characterize transitional behavior of calf thymus DNA molecules as a function of DNA concentration (0.01 up to 2.5 mg mL(-1)) and temperature (10, 20, 30 and 40 degrees C) at a pH of 7.3. Here it is proposed a novel method able to analyze the temperature and concentration effects on polymeric molecules such as DNA in their different characteristic regimes, in which are present diverse chain interactions, through the electrochemical parameters provided by the EIS technique. The results obtained are interpreted in terms of an EIS classical analysis and a methodology similar to the one used in studies by oscillatory linear-rheology measurements, i.e. loglog Bode plots (real (Z') and imaginary (-Z '') impedance components vs. omega), from which is possible to easily determine both impedance characteristic crossover frequency (omega(c)), and Z(o), related to the solution resistance (R-s). It is possible to detect the overlap and the entanglement concentrations of the system, C* and C-e, respectively, from the analysis of Zo and the characteristic time-constant of the process tau(c) (1/omega(c)) as a function of DNA concentration. The parameters Z(o) and tau(c) exhibit three regimes according to a power law dependence with DNA concentration for all the studied temperatures. Once the scaling of the electrochemical parameters, Z(o) and tau(c), was established, it was possible to generalize an impedance transfer function for DNA adsorption process on platinum electrodes as a function of C-DNA. This transfer function allows to predict the impedance behaviour at OCV for a chosen DNA concentration within a specific regime and to analyze theoretically the double-layer charging of the interface as a function of DNA concentration with only one impedance experiment. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在这项工作中,电化学阻抗谱(EIS)用于表征小牛胸腺DNA分子随DNA浓度(0.01至2.5 mg mL(-1))和温度(10、20、30和40度)的转变行为C)在pH为7.3。在这里,提出了一种新颖的方法,该方法能够通过EIS技术提供的电化学参数来分析温度和浓度对聚合物分子(例如DNA)在其不同特征范围内的温度和浓度影响,这些不同特征范围内存在各种链相互作用。根据EIS经典分析和类似于振荡线性流变学研究中所使用的方法,对获得的结果进行解释,即对数博德图(实数(Z')和虚数(-Z”)阻抗分量与Ω),由此可以轻松确定与固溶电阻(Rs)相关的阻抗特性交叉频率(omega(c))和Z(o)。通过对Zo和过程tau(c)(1 / omega(c))的特征时间常数的分析,可以分别检测系统C *和Ce的重叠和纠缠浓度。 DNA浓度的功能。在所有研究温度下,参数Z(o)和tau(c)根据幂定律与DNA浓度的关系表现出三种状态。一旦确定了电化学参数Z(o)和tau(c)的标度,就有可能将铂电极上DNA吸附过程的阻抗传递函数推广为C-DNA的函数。这种传递函数可以预测在特定条件下所选DNA浓度在OCV下的阻抗行为,并且仅通过一个阻抗实验即可理论上分析界面双层电荷随DNA浓度的变化。 (C)2015 Elsevier Ltd.保留所有权利。

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