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Published on: February 13, 2017
Highly Efficient Chlorine Fixation Based on Organic Selenium for 3.7-V Aqueous Batteries
Ze Chen1, Yiqiao Wang2, Zhiquan Wei2
1Wu Jieh Yee School of Interdisciplinary Studies, Lingnan University, 8 Castle Peak Road, Tuen Mun, Hong Kong 999077, China.
Researchers developed a novel selenium-based organic material for chlorine-based batteries, enabling highly reversible chlorine redox reactions with minimal chlorine gas emission. This breakthrough enhances energy density and safety for advanced aqueous battery applications.
Area of Science:
- Electrochemistry
- Materials Science
- Energy Storage
Background:
- Aqueous batteries require high-potential cathode materials to improve energy density.
- Chlorine-based batteries offer high redox potential and capacity but suffer from chlorine gas leakage and poor reversibility.
Purpose of the Study:
- To develop a stable and reversible chlorine redox reaction (ClRR) for high-performance aqueous batteries.
- To address the challenges of chlorine gas emission and poor Cl fixation in chlorine-based batteries.
Main Methods:
- Utilized a selenium-based organic molecule, polymerized benzoselenadiazole (poly-PhSe), as a chlorine-anchoring agent.
- Employed chalcogen-halogen coordinating chemistry for atomic-level chlorine fixation.
- Investigated the electrochemical performance of the poly-PhSe electrode with a graphite anode in an aqueous system.
Main Results:
- Achieved highly reversible ClRR with significantly reduced chlorine gas emission.
- Demonstrated a high discharge voltage of 3.7 V (vs. graphite anode) and an average output voltage of 1.79 V.
- Obtained a high discharge capacity of 344 mAh g⁻¹ with 99.1% Coulombic efficiency and 84.6% capacity retention after 850 cycles.
- Pouch cells delivered a record areal capacity of 5.3 mAh cm⁻².
Conclusions:
- Atomic-level chlorine fixation via chalcogen-halogen coordination chemistry enables efficient and reversible ClRR.
- The developed poly-PhSe electrode shows great potential for practical applications in high-performance aqueous batteries.
- This approach provides new insights for designing reversible halogen-based battery systems.
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