| Literature DB >> 33383856 |
Iker Boyano1, Aroa R Mainar1, J Alberto Blázquez1, Andriy Kvasha1, Miguel Bengoechea1, Iratxe de Meatza1, Susana García-Martín2, Alejandro Varez3, Jesus Sanz4, Flaviano García-Alvarado5.
Abstract
The organic solvents that are widely used as electrolytes in lithium ion batteries present safety challenges due to their volatile and flammable nature. The replacement of liquid organic electrolytes by non-volatile and intrinsically safe ceramic solid electrolytes is an effective approach to address the safety issue. However, the high total resistance (bulk and grain boundary) of such compounds, especially at low temperatures, makes those solid electrolyte systems unpractical for many applications where high power and low temperature performance are required. The addition of small quantities of a polymer is an efficient and low cost approach to reduce the grain boundary resistance of inorganic solid electrolytes. Therefore, in this work, we study the ionic conductivity of different composites based on non-sintered lithium lanthanum titanium oxide (La0.5Li0.5TiO3) as inorganic ceramic material and organic polymers with different characteristics, added in low percentage (<15 wt.%). The proposed cheap composite solid electrolytes double the ionic conductivity of the less cost-effective sintered La0.5Li0.5TiO3.Entities:
Keywords: grain boundary resistance; lithium ion conductivity; lithium lanthanum titanium oxide (LLTO); solid ceramic-polymer composite electrolyte
Year: 2020 PMID: 33383856 DOI: 10.3390/nano11010061
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076