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Impedance Spectroscopy as a Novel Approach to Probe the Phase Transition and Microstructures Existing in CS:PEO Based Blend Electrolytes

机译:阻抗谱法是一种探索基于CS:PEO的共混电解质中相变和微观结构的新方法

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摘要

In this work the role of phase transition of PEO from crystalline to amorphous phases on DC conductivity enhancement in chitosan-based polymer electrolyte was discussed. Silver ion-conducting polymer electrolytes based on chitosan (CS) incorporated with silver nitrate (AgNt) is prepared via solution cast technique. Various amounts of polyethylene oxide (PEO) are added to the CS:AgNt system to prepare blend polymer electrolytes. Ultraviolet-visible (UV-vis) spectrophotometry is used to confirm that the blended samples containing AgNt salt exhibit a broad absorption peak. From optical micrograph images it is apparent that small white specs appear on the surface of the samples. The SEM results clearly show the aggregated silver nanoparticles. The enlargement of the crystalline area was observed from the morphological emergence and impedance plots. The phase separation in SEM images was observed at high PEO concentration. The XRD consequences support the morphological manifestation. In this study a new approach is offered to explore the microstructures existing in the blend electrolytes. The width of the semicircle linked to crystalline phase in impedance spectra was found to be increased with the increase of PEO concentration. A slow increase of DC conductivity was observed at low temperatures while above 333 K an immediate change in DC conductivity was obtained. The rapid rise of DC conductivity at high temperatures is correlated with the DSC results and impedance studies at high temperatures.
机译:在这项工作中,讨论了基于壳聚糖的聚合物电解质中PEO从晶相到非晶相的相变对DC电导率增强的作用。通过溶液浇铸技术制备了基于壳聚糖(CS)并结合有硝酸银(AgNt)的银离子导电聚合物电解质。将各种量的聚环氧乙烷(PEO)添加到CS:AgNt系统中,以制备共混聚合物电解质。紫外可见(UV-vis)分光光度法用于确认掺有AgNt盐的样品显示出宽的吸收峰。从光学显微图像可以看出,样品表面上出现了小的白色斑点。 SEM结果清楚地显示出聚集的银纳米颗粒。从形态出现和阻抗图观察到结晶区域的扩大。在高PEO浓度下观察到SEM图像中的相分离。 XRD结果支持形态学表现。在这项研究中,提供了一种新方法来探索共混电解质中存在的微观结构。发现在阻抗谱中与晶相连接的半圆的宽度随着PEO浓度的增加而增加。在低温下观察到直流电导率缓慢增加,而在333 K以上时,直流电导率立即变化。高温下直流电导率的快速升高与DSC结果和高温下的阻抗研究相关。

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