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基于微晶纤维素的离子传导固体聚合物电解质的阻抗、等效电路(EEC)建模、结构(傅里叶变换红外光谱和X射线衍射)、介电和电模量研究

Impedance, Electrical Equivalent Circuit (EEC) Modeling, Structural (FTIR and XRD), Dielectric, and Electric Modulus Study of MC-Based Ion-Conducting Solid Polymer Electrolytes.

作者信息

Faris Balen K, Hassan Ary A, Aziz Shujahadeen B, Brza Mohamad A, Abdullah Aziz M, Abdalrahman Ari A, Abu Ali Ola A, Saleh Dalia I

机构信息

Hameed Majid Advanced Polymeric Materials Research Lab., Physics Department, College of Science, University of Sulaimani, Qlyasan Street, Kurdistan Regional Government, Sulaimani 46001, Iraq.

Department of Civil Engineering, College of Engineering, Komar University of Science and Technology, Kurdistan Regional Government, Sulaimani 46001, Iraq.

出版信息

Materials (Basel). 2021 Dec 27;15(1):170. doi: 10.3390/ma15010170.

Abstract

The polymer electrolyte system of methylcellulose (MC) doped with various sodium bromide (NaBr) salt concentrations is prepared in this study using the solution cast technique. FTIR and XRD were used to identify the structural changes in solid films. Sharp crystalline peaks appeared at the XRD pattern at 40 and 50 wt.% of NaBr salt. The electrical impedance spectroscopy (EIS) study illustrates that the loading of NaBr increases the electrolyte conductivity at room temperature. The DC conductivity of 6.71 × 10 S/cm is obtained for the highest conducting electrolyte. The EIS data are fitted with the electrical equivalent circuit (EEC) to determine the impedance parameters of each film. The EEC modeling helps determine the circuit elements, which is decisive from the engineering perspective. The DC conductivity tendency is further established by dielectric analysis. The EIS spectra analysis shows a decrease in bulk resistance, demonstrating free ion carriers and conductivity boost. The dielectric property and relaxation time confirmed the non-Debye behavior of the electrolyte system. An incomplete semicircle further confirms this behavior model in the Argand plot. The distribution of relaxation times is related to the presence of conducting ions in an amorphous structure. Dielectric properties are improved with the addition of NaBr salt. A high value of a dielectric constant is seen at the low frequency region.

摘要

本研究采用溶液浇铸技术制备了掺杂不同溴化钠(NaBr)盐浓度的甲基纤维素(MC)聚合物电解质体系。利用傅里叶变换红外光谱(FTIR)和X射线衍射(XRD)来识别固体薄膜的结构变化。在XRD图谱中,当NaBr盐含量为40 wt.%和50 wt.%时出现尖锐的结晶峰。电阻抗谱(EIS)研究表明,NaBr的加入提高了室温下电解质的电导率。对于导电性最高的电解质,其直流电导率为6.71×10 S/cm。将EIS数据与等效电路(EEC)拟合,以确定各薄膜的阻抗参数。EEC建模有助于确定电路元件,这从工程角度来看是决定性的。通过介电分析进一步确定了直流电导率趋势。EIS谱分析表明体电阻降低,表明存在自由离子载流子且电导率提高。介电性质和弛豫时间证实了电解质体系的非德拜行为。在复平面图中,一个不完整的半圆进一步证实了这种行为模型。弛豫时间的分布与非晶结构中导电离子的存在有关。加入NaBr盐后介电性能得到改善。在低频区域观察到较高的介电常数。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c6b1/8746227/34b3a6f3a52b/materials-15-00170-g001.jpg

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