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Polyether Single and Double Crystalline Blends and the Effect of Lithium Salt on Their Crystallinity and Ionic Conductivity

Authors :
Michele Pastorio
Elena Gabirondo
Jorge L. Olmedo-Martínez
David Mecerreyes
Alessandra Lorenzetti
Haritz Sardon
Alejandro J. Müller
Source :
Addi. Archivo Digital para la Docencia y la Investigación, instname, Polymers, Volume 13, Issue 13, Addi: Archivo Digital para la Docencia y la Investigación, Universidad del País Vasco, Polymers, Vol 13, Iss 2097, p 2097 (2021)
Publication Year :
2021
Publisher :
MDPI, 2021.

Abstract

In this work, blends of Poly(ethylene oxide), PEO, and poly(1,6-hexanediol), PHD, were prepared in a wide composition range. They were examined by Differential Scanning Calorimetry (DSC), Polarized Light Optical Microscopy (PLOM) and Wide Angle X-ray Scattering (WAXS). Based on the results obtained, the blends were partially miscible in the melt and their crystallization was a function of miscibility and composition. Crystallization triggered phase separation. In blends with higher PEO contents both phases were able to crystallize due to the limited miscibility in this composition range. On the other hand, the blends with higher PHD contents display higher miscibility and therefore, only the PHD phase could crystallize in them. A nucleation effect of the PHD phase on the PEO phase was detected, probably caused by a transference of impurities mechanism. Since PEO is widely used as electrolyte in lithium batteries, the PEO/PHD blends were studied with lithium bis(trifluoromethanesulfonyl) imide (LiTFSI), and the effect of Li-salt concentration was studied. We found that the lithium salt preferentially dissolves in the PEO phase without significantly affecting the PHD component. While the Li-salt reduced the spherulite growth rate of the PEO phase within the blends, the overall crystallization rate was enhanced because of the strong nucleating effect of the PHD component. The ionic conductivity was also determined for the blends with Li-salt. At high temperatures (&gt<br />70 °C), the conductivity is in the order of ~10−3 S cm−1, and as the temperature decreases, the crystallization of PHD was detected. This improved the self-standing character of the blend films at high temperatures as compared to the one of neat PEO.

Details

Language :
English
Database :
OpenAIRE
Journal :
Addi. Archivo Digital para la Docencia y la Investigación, instname, Polymers, Volume 13, Issue 13, Addi: Archivo Digital para la Docencia y la Investigación, Universidad del País Vasco, Polymers, Vol 13, Iss 2097, p 2097 (2021)
Accession number :
edsair.doi.dedup.....98a46fbb38d6eefa7903ab721d38b158