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Combined effect of Al2O3 nano-fillers and EC plasticizer on ionic conductivity enhancement in the solid polymer electrolyte (PEO)_9LiTf

机译:Al2O3纳米填料和EC增塑剂对固体聚合物电解质(PEO)_9LiTf中离子电导率增强的联合作用

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摘要

Poly (ethylene oxide)—(PEO)-based composite polymer electrolytes are of great interest for solid-state-electrochemical devices. Among these materials, (PEO)9LiCF3SO3 or (PEO)9LiTf has been widely studied as a potential candidate. There have been many studies aimed at improving the ambient temperature ionic conductivity in this material either by incorporating plasticizers such as ethylene carbonate (EC) and propylene carbonate (PC) or by incorporating micro-sized or nano-sized inorganic fillers such as Al2O3, SiO2 or TiO2. However, to our knowledge, no report can be found in the literature on the combined effect of EC and Al2O3 on (PEO)9LiTf. This paper describes the combined effect of incorporating the Al2O3 filler and the EC plasticizer on the ionic conductivity enhancement of the (PEO)9LiTf electrolyte. Maximum conductivity enhancement has been achieved by optimizing the effects of the plasticizer and the ceramic filler. Nano-sized alumina filler-added, plasticized polymer electrolyte films (400–600 μm), prepared by common solvent casting method has been characterized by ionic conductivity and differential calorimetric measurements. The incorporation of 50 wt.% EC and 15 wt.% Al2O3 to the (PEO)9LiTf electrolyte showed a significant conductivity enhancement with σRT (max) = 1.5 × 10? 4 S cm? 1 while retaining the mechanical strength of electrolyte films. As expected, the conductivity is enhanced by the plasticizer by reducing the crystallinity and increasing the amorphous phase content of the polymer electrolytes. The ceramic filler (Al2O3) also contributes to conductivity enhancement by promoting the above structural changes in the polymer electrolyte. It is evident that, an additional mechanism, directly associated with filler particles, would also be responsible for the conductivity enhancement caused by the filler. One possible explanation for this could be by creating additional sites for migrating ionic species through transient bonding with O/OH groups in the filler surface as suggested by previous workers. The decrease of Tg values of plasticized and filler-added polymer electrolyte samples seen in the DSC thermograms points towards the improved segmental flexibility of polymer chains, leading to increased mobility of conducting ions.
机译:聚(环氧乙烷)-(PEO)基复合聚合物电解质对固态电化学装置非常感兴趣。在这些材料中,已经广泛地研究了(PEO)9LiCF3SO3或(PEO)9LiTf作为潜在的候选材料。通过掺入增塑剂(例如碳酸亚乙酯(EC)和碳酸亚丙酯(PC))或掺入微米或纳米尺寸的无机填料(例如Al2O3,SiO2),已有许多研究旨在改善这种材料的环境离子传导性。或TiO2。然而,据我们所知,在文献中找不到关于EC和Al2O3对(PEO)9LiTf的联合作用的报道。本文介绍了掺入Al2O3填料和EC增塑剂对(PEO)9LiTf电解质离子电导率增强的综合作用。通过优化增塑剂和陶瓷填料的效果,可以最大程度地提高电导率。通过常规溶剂浇铸法制备的添加了纳米氧化铝粉的增塑聚合物电解质膜(400–600μm)的特征在于离子电导率和差示量热法。在(PEO)9LiTf电解质中加入50%(重量)的EC和15%(重量)的Al2O3表现出显着的电导率提高,σRT(max)= 1.5×10Ω。 4 S厘米? 1同时保持电解质膜的机械强度。如所期望的,通过降低聚合物电解质的结晶度并增加非晶相含量,增塑剂提高了电导率。陶瓷填料(Al 2 O 3)还通过促进聚合物电解质中的上述结构变化而有助于提高导电性。显然,与填料颗粒直接相关的另外的机理也将负责由填料引起的电导率的提高。一种可能的解释可能是通过创建其他位置来迁移离子物质,该位置是通过与填充剂表面中的O / OH基团进行瞬时键合来实现的,这是先前工作人员所建议的。 DSC热分析图中观察到的增塑和添加了填料的聚合物电解质样品的Tg值降低,表明聚合物链的分段柔性得到改善,从而导致了导电离子迁移率的提高。

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