| Literature DB >> 35493665 |
Elena E Ushakova1,2,3, Artem V Sergeev1,2, Artem Morzhukhin4, Filipp S Napolskiy4, Olga Kristavchuk3, Alexander V Chertovich1,2, Lada V Yashina1,2, Daniil M Itkis1,2.
Abstract
Solid electrolytes are of high interest for the development of advanced electrochemical energy storage devices with all-solid-state architectures. Here, we report the fabrication of the electrolyte membranes based on LiTFSI (LiN(CF3SO2)2) and PEO-PVDF blends with improved properties. We show that addition of PVDF enables preparation of free-standing films of the compositions within the so called "crystallinity gap" of the LiTFSI-PEO system known to provide high ion conductivity. We show that optimal PVDF content enables preparation of the films with reasonable elastic modulus and high ionic conductivity of about 0.3 mS cm-1 at 60 °C and about 0.1 mS cm-1 at room-temperature. Combining FTIR spectroscopy, XRD and DSC measurements we show that a noticeable fraction of PVDF remains crystalline and enhances the mechanical properties of the material, and at the same time it additionally promotes LiTFSI dissociation and disordering. Density functional theory calculations showed that the Li+-PEO-PVDF complexation energy magnitude is almost as high as that of Li-PEO complexes, thus the salt dissociation ability can be retained in spite of the introduction of the substantial amounts of PVDF required for mechanical stability. This journal is © The Royal Society of Chemistry.Entities:
Year: 2020 PMID: 35493665 PMCID: PMC9052884 DOI: 10.1039/d0ra02325f
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Fig. 1(a) Diagram showing the region in which free-standing LiTFSI–PEO–PVDF films cannot be obtained due to poor mechanical properties. The region with experimental points represents the film compositions that were obtained as free-standing films. Color denotes the ionic conductivity measured at 60 °C. For pure PEO (0% PVDF) “crystallinity gap” region is shown, in which no crystalline complexes of LiTFSI and PEO are formed. (b) The dependence of ionic conductivity measured at 60 °C on EO : Li ratio for various PVDF content, which is denoted by color. (c) Temperature dependencies of the films elastic modulus measured using DMA at 10 Hz and ε = 0.3%. Solid lines denote samples with EO : Li = 20 : 1, the dotted curve is for EO : Li = 6 : 1. Curve color denotes PVDF content. The inset shows a photograph of the SPE film (EO : Li 6 : 1, 30 wt% PVDF), stretched between tweezers. (d) The dependence of ionic conductivity measured at 25 °C on EO : Li ratio for various PVDF content, which is shown by color.
Fig. 2Representative regions of XRD patterns of the films with EO : Li 20 : 1 and different PVDF fraction (a) and for the films with 30 wt% PVDF and various EO : Li ratio (b). Patterns are collected using CuKα radiation.
Fig. 3DSC curves for polymer films with EO : Li ratio of 20 : 1 and various PVDF content (a) and for the samples with 30 wt% PVDF and various EO : Li ratio (b). The data were recorded at 10 °C min−1 heating rate. (c) Heating and cooling DSC curves (10 °C min−1 rate) for the samples with 0 and 30 wt% PVDF and LiTFSI concentration corresponding to EO : Li of 20 : 1. (d) Dependence of PEO crystallinity (χ) and the temperature range (ΔT), in which PEO is fully amorphous, on the wt. fraction of PVDF for the films with EO : Li of 20 : 1.
Enthalpy of Li+ complexation by oligomer chains
| System | Complexation enthalpy, eV |
|---|---|
| Li+ + H(EO)3CH3 | −3.61 |
| Li+ + H(EO)4CH3 | −4.09 |
| Li+ + H(EO)5CH3 | −4.50 |
| Li+ + 2H(EO)3CH3 | −4.69 |
| Li+ + H(CH2CF2)3CH3 | −2.31 |
| Li+ + 2H(CH2CF2)3CH3 | −3.38 |
| Li+ + H(EO)3CH3 + H(CH2CF2)CH3 | −4.37 |
Fig. 4Optimized geometries of Li+ complexes with two H(EO)3CH3 chains (a) and with one H(EO)3CH3 chain + one H(CH2CF2)3CH3 chain (b). Black dash lines denote coordinating atoms (distance is within in the range 1.9–2.2 Å). Oxygen are shown in red, lithium – in purple, fluorine – in blue, carbon – in dark grey, hydrogen – in light grey.
Fig. 5(a) FTIR spectra of SPE films with 30 wt% PVDF and various EO : Li ratios. FTIR spectra of pure PEO, PVDF and crystalline LiTFSI are shown for the reference. Regions are colored to denote the wavenumber ranges representative for TFSI− anion vibrations (grey), PEO (blue) and PVDF (violet). Cation transference numbers for the samples with different fraction of PVDF and 20 : 1 EO : Li ratio (b) and for the samples with different EO : Li ratio (c).