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Electrical Dielectric Property and Electrochemical Performances of Plasticized Silver Ion-Conducting Chitosan-Based Polymer Nanocomposites

机译:塑化银离子导电壳聚糖基聚合物纳米复合材料的电气介电性能和电化学性能

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摘要

In the present work, chitosan (CS) as a natural biopolymer was used to prepare nanocomposite polymer electrolytes (NCPEs) in order to reduce plastic waste pollution. The plasticized CS-based NCSPE has been prepared via the solution casting technique. The electrical properties of the films were investigated using AC conductivity, dielectric properties, electric modulus, and electrical impedance spectroscopy (EIS). The obtained results from the dielectric properties and electric modulus study confirm the non-Debye behavior of ion dynamics. The effect of glycerol plasticizer on ionic conductivity of the CS:AgNO :Al O system was investigated via AC conductivity and impedance studies. The conductivity of the samples was explained based on electrical equivalent circuits and Bode plots. The electrochemical properties such as transfer number measurement (TNM), linear sweep voltammetry (LSV), and cyclic voltammetry (CV) were carried out to inspect the sample suitability for electrochemical double-layer capacitor (EDLC) application. The highest conductivity was 3.7 × 10 S cm with the electrochemical stability window up to 2.1 V at room temperature. Through the TNM study, the ionic conductivity of plasticized CS-based NCSPE was confirmed, and ion transport ( ) of the highest conducting sample was found to be 0.985. The activated carbon electrode with the highest conducting sample was employed in the EDLC device fabrication. Accordingly, it can be said that the highest conducting sample had capable performance to be applied in electrochemical device application.
机译:在本作工作中,使用壳聚糖(Cs)作为天然生物聚合物制备纳米复合材料聚合物电解质(NCPE)以减少塑料废物污染。通过溶液铸造技术制备了塑化的CS基NCSPE。研究了AC电导率,电介质性质,电模量和电阻抗谱(EIS)研究了膜的电性质。所得介电性能和电模量研究的结果证实了离子动力学的非脱德脱。甘油增塑剂对Cs:AgNo:Al O系统的影响对Cs的离子电导率的影响。基于电量等效电路和BODE图来解释样品的电导率。进行了电化学性质,例如转移数测量(TNM),线性扫描伏安法(LSV)和循环伏安法(CV),以检查电化学双层电容器(EDLC)应用的样品适宜性。最高电导率为3.7×10 S cm,电化学稳定性窗口在室温下高达2.1V。通过TNM研究,确认了塑化的CS基NCSPE的离子电导率,发现最高导电样品的离子转运()为0.985。在EDLC器件制造中采用具有最高导电样品的活性炭电极。因此,可以说,最高导电样品具有能够在电化学装置应用中应用的能力。

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