Related Experiment Video
Updated: Jun 6, 2025

Characterization of Electrode Materials for Lithium Ion and Sodium Ion Batteries Using Synchrotron Radiation Techniques
Published on: November 11, 2013
An π-conjugated organic cathode with multiple cyano-substituted for stable aqueous aluminum batteries
Yong Lu1, Qing Ge1, Changde Hu1
1Hebei Key Laboratory of Optic-Electronic Information and Materials, National & Local Joint Engineering Laboratory of New Energy Photoelectric Devices, College of Physics Science and Technology, Hebei University, Baoding 071002, China.
Abstract:
Aqueous organic aluminum batteries (AOABs) are increasingly becoming a focal point for next-generation large-scale energy storage solutions due to their safety, reliability, and structural diversity. However, the development of organic molecules is hindered by their low electron affinity and slow molecular dynamics. To address these drawbacks, a high-electrophilicity organic molecule, DQP-6CN was synthesized. Surprisingly, the introduction of cyano-substituted compounds not only provided additional redox sites to increase specific capacity but also significantly enhanced stability during cycling by extending the π-conjugation. Ex-situ tests and density functional theory (DFT) revealed the unique coordination mechanism between the cyano group (CN) and Al(OTF)2+ ions. Moreover, the introduction of the cyano group reduced coulomb repulsion between electrons by lowering the local electron density of the molecule, significantly improving the rate performance, as further validated by electrochemical testing and theoretical simulations. Consequently, it delivers a high discharge specific capacity of 279 mAh g-1 at 400 mA g-1, excellent rate capability and high cycle life. This experiment demonstrates that cyano compounds as cathodes for aqueous aluminum batteries open a new research avenue for safer and more efficient aqueous storage systems.
Related Concept Videos
Aldehydes and Ketones with HCN: Cyanohydrin Formation Overview
Batteries and Fuel Cells
Aldehydes and Ketones with HCN: Cyanohydrin Formation Mechanism
Preparation of Aldehydes and Ketones from Nitriles and Carboxylic Acids
Reducing carboxylic acid derivatives like acyl chlorides (RCOCl), esters (RCO2R′), and nitriles (RCN) using milder aluminum hydride agents like lithium tri-tert-butoxyaluminum hydride [LiAlH(O-t-Bu)3] and diisobutylaluminum hydride [DIBAL-H]...
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...
Acidity of 1-Alkynes
The acidic strength of hydrocarbons follows the order: Alkynes > Alkenes > Alkanes. The strength of an acid is commonly expressed in units of pKa — the lower the pKa, the stronger the acid. Among the hydrocarbons, terminal alkynes have lower pKa values and are, therefore, more acidic. For example, the pKa values for ethane, ethene, and acetylene are 51, 44, and 25, respectively, as shown here.

