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Physico-Chemical Thermal and Electrochemical Analysis of Solid Polymer Electrolyte from Vegetable Oil-Based Polyurethane

机译:植物油基聚氨酯固体聚合物电解质的物理化学热和电化学分析

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摘要

In this paper, we report the preparation of bio-based polyurethane (PU) from renewable vegetable oil. The PU was synthesized through the reaction between jatropha oil-based polyol and isocyanate in a one-shot method. Then, lithium perchlorate (LiClO4) salt was added to the polyurethane system to form an electrolyte film via a solution casting technique. The solid polymer electrolyte was characterized through several techniques such as nuclear magnetic resonance (NMR), Fourier transforms infrared (FTIR), electrochemical studies, thermal studies by differential scanning calorimetry (DSC), and dynamic mechanical analysis (DMA). The NMR analysis confirmed that the polyurethane was successfully synthesized and the intermolecular reaction had occurred in the electrolytes system. The FTIR results show the shifting of the carbonyl group (C=O), ether and ester group (C–O–C), and amine functional groups (N–H) in PU–LiClO4 electrolytes compared to the blank polyurethane, which suggests that interaction occurred between the oxygen and nitrogen atom and the Li+ ion as they acted as electron donors in the electrolytes system. DSC analysis shows a decreasing trend in glass transition temperature, Tg and melting point, Tm of the polymer electrolyte as the salt content increases. Further, DMA analysis shows similar behavior in terms of Tg. The ionic conductivity increased with increasing salt content until the optimum value. The dielectric analysis reveals that the highest conducting electrolyte has the lowest relaxation time. The electrochemical behavior of the PU electrolytes is in line with the Tg result from the thermal analysis.
机译:在本文中,我们报告了从可再生植物油中制备生物基聚氨酯(PU)。通过在一滴方法中通过Joatropha油基多元醇和异氰酸酯之间的反应合成PU。然后,将高氯酸锂(LiClO4)盐加入到聚氨酯体系中以通过溶液浇铸技术形成电解质膜。通过诸如核磁共振(NMR),傅里叶变换红外(FTIR),电化学研究,通过差示扫描量热法(DSC)的热研究以及动态机械分析(DMA)的热学研究,以及动态机械分析(DMA)的若干技术以若干技术为特征。 NMR分析证实了聚氨酯成功合成,并且在电解质系统中发生了分子间反应。与空白聚氨酯相比,FTIR结果显示羰基(C = O),乙醚和酯基(C-O-C),胺官能团(C-O-C)(N-H)的转换,并与坯料聚氨酯相比表明当它们用作电解质系统中的电子供体时,氧气和氮原子和Li +离子之间发生相互作用。 DSC分析显示玻璃化转变温度,Tg和熔点的趋势降低,聚合物电解质的Tm作为盐含量增加。此外,DMA分析显示了TG方面的类似行为。离子电导率随着盐含量的增加而增加,直至最佳值。介电分析表明,最高导电电解质具有最低的弛豫时间。 PU电解质的电化学行为与热分析有关TG导致的。

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