Related Experiment Video
Updated: Sep 30, 2026

Characterization of Electrode Materials for Lithium Ion and Sodium Ion Batteries Using Synchrotron Radiation Techniques
Published on: November 11, 2013
Macrocyclic molecular engineering enables high-energy and durable organic electrode for lithium-ion batteries
Huiling Peng1, Yaheng Geng1, Yu Han1
1State Key Laboratory of Chemo and Biosensing, College of Chemistry and Chemical Engineering, Hunan University, Changsha, China.
Abstract:
Organic electrode materials are promising candidates for lithium-ion batteries, but their practical adoption is constrained by the persistent trade-off between capacity and cycling stability. While small-molecule organic compounds deliver high capacities yet suffer from dissolution, covalent organic frameworks enhance stability at the expense of active-site accessibility. Here, we introduce a macrocyclic molecular design synergizing framework-like robustness with small-molecule redox efficiency. The designed hexagonal monocyclic benzoquinone integrates a π-conjugated core with densely packed electroactive moieties (carbonyl, imine, and hydroxyl), enabling a high theoretical capacity of 812 mAh g-1. As a positive electrode, it achieves near-theoretical capacity (806 mAh g-1 at 0.05 A g-1) with a high specific energy of 1507 Wh kgHPBQ-1, while maintaining 81% capacity after 1000 cycles at 5 A g-1. Mechanistic studies explore a potential 36-electron transfer mechanism per macrocyclic unit during initial discharge, followed by irreversible hydroxyl-to-carbonyl conversion upon charging, which generates a phenanthrenequinone-based macrocycle capable of reversible 48-electron transfer per macrocyclic unit in subsequent cycles. This molecular architecture has the potential to overcome the longstanding capacity-stability trade-off in organic electrodes.
Related Concept Videos
Batteries and Fuel Cells
Microbial Fuel Cells

