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High Performance Composite Polymer Electrolytes Doped With Spherical-Like and Honeycomb Structural Li0.1Ca0.9TiO3 Particles

机译:球形和蜂窝状Li0.1Ca0.9TiO3颗粒掺杂的高性能复合聚合物电解质

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摘要

The spherical-like and honeycomb structural Li0.1Ca0.9TiO3 particles are prepared by spray drying combined with following calcination confirmed by X-ray diffraction (XRD) and scanning electron microscopy (SEM) with energy dispersive X-ray spectrometer (EDS). The poly (vinylidene fluoride-co-hexafluoropropylene) (P(VDF-HFP))-based composite polymer electrolytes (CPEs) modified with the particles are fabricated by phase inversion and activation processes. The characterization results show that the as-prepared CPE membranes possess the smoothest surface and most abundant micropores with the lowest crystallinity with adding the particles into the polymer matrix, which results in high ionic conductivity (3.947 mS cm−1) and lithium ion transference number (0.4962) at ambient temperature. The interfacial resistance can be quickly stabilized at 508 Ω after 5 days storage and the electrochemical working window is up to 5.2 V. Moreover, the mechanical strength of the membranes gains significant improvement without lowering the ionic conductivity. Furthermore, the assembled coin cell can also deliver high discharge specific capacity and preserve steady cycle performance at different current densities. Those outstanding properties may be ascribed to the distinctive structure of the tailored spherical-like and honeycomb structural Li0.1Ca0.9TiO3 particles, which can guarantee the desirable CPEs as a new promising candidate for the polymer electrolyte.
机译:通过喷雾干燥与随后的煅烧结合制备球形和蜂窝状的Li0.1Ca0.9TiO3颗粒,所述煅烧由X射线衍射(XRD)和具有能量色散X射线光谱仪(EDS)的扫描电子显微镜(SEM)确认。通过相转化和活化过程,制备了经颗粒改性的聚偏二氟乙烯-共-六氟丙烯(P(VDF-HFP))基复合聚合物电解质(CPE)。表征结果表明,所制备的CPE膜具有最光滑的表面和最丰富的微孔,具有最低的结晶度,并且将颗粒添加到聚合物基质中,从而导致高离子电导率(3.947 mS cm -1 )和环境温度下的锂离子转移数(0.4962)。储存5天后,界面电阻可以快速稳定在508Ω,电化学工作窗口高达5.2V。此外,膜的机械强度得到了显着改善,而又不降低离子电导率。此外,组装的纽扣电池还可以提供高放电比容量并在不同电流密度下保持稳定的循环性能。那些突出的性能可以归因于定制的球形和蜂窝状结构Li0.1Ca0.9TiO3颗粒的独特结构,这可以保证理想的CPE作为聚合物电解质的新的有希望的候选者。

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