Development of new pyrazole-based lithium salts for battery applications – Do established basic design concepts really work?

Gruenebaum M, Buchheit A, Krause D, Hiller M, Schmidt C, Winter M, Wiemhoefer H-D

Research article (journal) | Peer reviewed

Abstract

This work is focused on applying structural concepts and basic chemical principles to model two N-heterocyclic lithium salts, based on trifluoromethyl substituted pyrazolide anions. An easily upscalable preparation method without difficult purification steps was also developed. In a comparative study, the physicochemical properties of the two new lithium salts were investigated, particularly the effect of an additional BF3-group at the nitrogen atom. In comparison to non-substituted lithium pyrazolide, the BF3-addition led to a strong improvement of thermal and electrochemical stability, ionic conductivity, as well as better C-rate and cycling performance. Furthermore, the anodic stability of Al current collectors was investigated and compared to commercial lithium salts, namely LiPF6 and lithium bis((trifluoromethyl)sulfonyl)imide (LiTFSI). Possible mechanisms that lead to the presented improvements are discussed.

Details about the publication

JournalElectrochimica Acta
Volume286
Page range313-323
StatusPublished
Release year2018 (01/10/2018)
Language in which the publication is writtenEnglish
DOI10.1016/j.electacta.2018.08.055
KeywordsElectrolyte salt anion; Electrochemistry; Heterocycles; Lithium ion battery; Basic concepts

Authors from the University of Münster

Buchheit, Annika
Professorship of Inorganic Chemistry (Prof. Wiemhöfer)
Grünebaum, Mariano
Münster Electrochemical Energy Technology Battery Research Center (MEET)
Hiller, Martin
Institute of Inorganic and Analytical Chemistry
Krause, Daniel
Professorship of Inorganic Chemistry (Prof. Wiemhöfer)
Wiemhöfer, Hans-Dieter
Professorship of Inorganic Chemistry (Prof. Wiemhöfer)
Winter, Martin
Münster Electrochemical Energy Technology Battery Research Center (MEET)