Active Clean Energy Materials & Manufacturing
Advancing Sodium-ion Battery Cycle Life: Understanding Degradation in Hard Carbon Anodes
Summary
Original abstract (not yet simplified)Na-ion battery (NIB) is the most promising technology among the next generation battery technologies. The main issue facing NIB is in their low cycle life. Limited cycle life of Na batteries results from degradation mechanisms occurring at both the cathode and the anode. While multiple cathode materials have been developed, the best-performing anode material remains hard carbon. Despite hard carbon's...
View original technical description
Na-ion battery (NIB) is the most promising technology among the next generation battery technologies. The main issue facing NIB is in their low cycle life. Limited cycle life of Na batteries results from degradation mechanisms occurring at both the cathode and the anode. While multiple cathode materials have been developed, the best-performing anode material remains hard carbon. Despite hard carbon's acceptable energy density, it suffers from inadequate cycle life. Significant efforts have been made to understand Na storage mechanisms in hard carbon. However, little effort has been devoted to understanding the degradation mechanisms and strategies to mitigate them. I propose research spanning multiple scales to evaluate the mechanisms causing degradation in hard carbon anodes and develop strategies to inhibit them, focusing on SEI and charge transfer mechanisms, and their influence by various operating parameters. This work will involve intensive mechanistic studies of Na-ion charge transfer and interfacial processes by conducting in-situ Electrochemical Impedance Spectroscopy (EIS) and Nuclear Magnetic Resonance Spectroscopy (NMR) measurements, which will identify and quantify the contributions of both Na-ion charge transfer and interface to hard carbon degradation. I will employ hard carbon symmetric cell configuration that allows for detailed analysis without the contribution from other electrodes. I will scale this mechanistic work with various parameters including electrolyte composition and temperature. The results will identify the primary contributors to the low cycle life of hard carbon anodes and bring strategies to extend their cycle life.
Related Research
Grants with similar aims, by meaning.
Optimising hard carbon anodes for efficient energy storage in sodium-ion batteries
Atomic-Level Structure and Dynamic Evolutions in Cobalt-Free High-Performance Sodium-Ion Battery Cathode
In Situ Observation of Batteries for Extending Lifetime
Investigating interfacial chemistry and materials for emerging anode-free and anode-less sodium metal batteries"
Advanced metamaterials for sodium-ion battery anodes – a scalability and economic feasibility study
Original classification
HORIZONPlain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research. Is something wrong? Let us know