Related Experiment Video
Updated: Jan 11, 2026

Synthesis of Ionic Liquid Based Electrolytes, Assembly of Li-ion Batteries, and Measurements of Performance at High Temperature
Published on: December 20, 2016
Electrochemical Stability Windows of Imidazolium-Based Ionic Liquids for Aluminum Batteries: Computational Insights
Megha1, Abolfazl Alizadeh Sahraei1,2, Faïçal Larachi1
1Department of Chemical Engineering, Université Laval, 1065 Avenue de la Médecine, Québec, Québec G1 V 0A6, Canada.
Abstract:
Understanding and tuning the electrochemical stability window (ECW) of ionic liquids (ILs) are essential for advancing energy storage technologies. In this study, density functional theory combined with the thermodynamic cycle method is employed to systematically investigate the ECWs of imidazolium-based cations paired with a range of fluorinated and chlorinated anions with potentials referenced to an aluminum electrode. A broad set of cation structures, including alkyl, methoxy-ethoxy, vinyl, and alkyl-bridged derivatives, is explored alongside common and hydrogen fluoride-containing anions, [F(HF)n]- (n = 0 - 3). The results show that while simple alkyl substitution has minimal redox impact, electron-donating and π-conjugated groups lower oxidation potentials via HOMO delocalization. Fluorinated anions confer high redox stability, whereas HF-containing anions limit both the oxidative and reductive boundaries. Notably, [im+-C3-im]+[BF4]- presents the widest ECW (5.813 V), while HF-containing anions yield narrower ECWs due to the coexistence of [F]- and [F(HF)]- entities. Accurate ECW estimation further requires proper consideration of anion redox pathways as the choice of reaction mechanisms strongly influences predicted stability limits. Comparative analysis with the HOMO-LUMO and adiabatic AIE-AEA methods confirms that the thermodynamic cycle approach delivers superior accuracy while remaining computationally efficient, making it well-suited for high-throughput screening. Furthermore, the solvent dielectric constant is found to significantly modulate redox boundaries, emphasizing the importance of solvation effects in predictive modeling. These insights provide a robust foundation for the design of ILs with tailored electrochemical performance in high-voltage rechargeable batteries.
Related Concept Videos
Ionic Bonding and Electron Transfer
Alkyl Halides
Alkyl halides are halogen-substituted alkanes wherein one or more hydrogen atoms of an alkane is replaced by a halogen atom such as fluorine, chlorine, bromine, or iodine. The carbon atom in an alkyl halide is bonded to the halogen atom, which is sp3-hybridized and exhibits a tetrahedral shape.
Unlike alkyl halides, compounds in which a halogen atom is bonded to an sp2 -hybridized carbon atom of a carbon-carbon double bond (C=C) are called vinyl halides. Whereas aryl...
Ionic Crystal Structures
Most monatomic ions behave as charged spheres, and their attraction for ions of opposite charge is the same in every direction. Consequently, stable structures for ionic compounds result (1) when ions of one charge are surrounded by as many ions as possible of the opposite...
Complexation Equilibria: Factors Influencing Stability of Complexes
Acid Halides to Alcohols: LiAlH4 Reduction
The mechanism proceeds in three steps. First, the nucleophilic hydride ion attacks the carbonyl carbon of the acid halide to form a tetrahedral intermediate. Next, the carbonyl group is re-formed, and the halide ion departs as a leaving group, generating an aldehyde. A second nucleophilic attack by the hydride yields an alkoxide ion, which, upon protonation, gives a primary alcohol as...
Ions as Acids and Bases
Salts are ionic compounds composed of cations and anions, either of which may be capable of undergoing an acid or base ionization reaction with water. Aqueous salt solutions, therefore, may be acidic, basic, or neutral, depending on the relative acid-base strengths of the salt’s constituent ions. For example, dissolving the ammonium chloride in water results in its dissociation, as described by the equation:

