Design of Fluorine‐Free Weakly Coordinating Electrolyte Solvents with Enhanced Oxidative Stability
Abstract
Abstract High concentrations of conducting salt in electrolyte formulations enhance the agglomeration of ionic species, which has been demonstrated to yield anion‐derived electrode–electrolyte interphases and improved reversibility in several battery configurations. However, industrial application of these electrolytes may be limited due to high costs of electrolyte conducting salts. Here, weakly solvating electrolyte solvents with tailored coordination strength have been established as an approach to achieve ionic agglomeration at moderate conducting salt concentrations and without per‐fluorinated diluents. However, the inevitable presence of uncoordinated solvent molecules in this electrolyte concept renders them susceptible to oxidative decomposition. Although previous efforts demonstrated fluorination as an effective design strategy to tailor the oxidative stability of weakly solvating electrolytes, the per‐fluorinated solvents are toxic and harmful to the environment. Herein, the incorporation of silicon is evaluated as an eco‐friendly approach to dispel electron density of the oxygen lone pair. Though steric demand of substituents is already sufficient to tailor the coordination strength, negative hyperconjugation effectively expands the oxidative stability limit of weakly solvating electrolytes. Combining ion agglomeration and intrinsic oxidative stability, the herein introduced weakly solvating electrolyte enables a notable improvement of reversibility under eco‐friendly conditions, presenting a valid alternative to fluorinated electrolyte solvents.
Article Details
Authors (10)
Lennart Wichmann
Adil Aboobacker
Helmholtz‐Institute Münster (IMD‐4) Forschungszentrum Jülich GmbH Münster Germany
Steffen Heuvel
International Graduate School for Battery Chemistry, Characterization, Analysis, Recycling and Application (BACCARA) University of Münster Corrensstr. 40 48149 Münster Germany
Felix Pfeiffer
Helmholtz-Institut Münster, IMD-4, Forschungszentrum Jülich GmbH 2 , 48149 Münster,
Robert‐Tobias Hinz
Forschungszentrum Jülich GmbH Helmholtz–Institute Münster IMD‐4, Corrensstr. 48 48149 Münster Germany
Frank Glorius
Organisch-Chemisches Institut, Universität Münster
Isidora Cekic‐Laskovic
Helmholtz‐Institute Münster (IMD‐4) Forschungszentrum Jülich GmbH Münster Germany
Diddo Diddens
Helmholtz Institute Münster (IMD-4), Forschungszentrum Jülich GmbH 2 , Münster 48149,
Martin Winter
Forschungszentrum Jülich GmbH, Helmholtz-Institute Münster (IMD-4), Corrensstraße 46, 48149 Münster, Germany
Gunther Brunklaus
Forschungszentrum Jülich GmbH, Helmholtz-Institute Münster (IMD-4), Corrensstraße 46, 48149 Münster, Germany