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Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications
Published on: August 12, 2013
Robust cement-graphite thick electrode enables high-performance molten salt aluminum batteries
Kai Luo1,2, Xiong Qian3, Jiashen Meng4,5
1State Key Laboratory of Silicate Materials for Architectures, School of Materials Science and Engineering, Wuhan University of Technology, Wuhan, China.
Abstract:
Molten-salt aluminum batteries are promising for grid-scale energy storage, leveraging the abundance and recyclability of aluminum along with the intrinsic safety, non-flammability, and high ionic conductivity of chloroaluminate electrolytes. However, conventional polymeric binders lack stability in high-temperature, corrosive molten-salt environments, leading to electrode structural degradation and premature battery failure. Here we propose thick cement-graphite electrodes for molten salt aluminum batteries that feature a self-supporting structure, high mechanical strength, high thermal tolerance, and resistance to chemical corrosion. In this design, graphite provides continuous electron-conducting pathways, while hydrated cement phases encapsulate and interconnect graphite, forming an inorganic skeleton with measurable mechanical properties, chemically inert, and hierarchically porous. Operating at 150 °C, the Al| |cement-graphite cells achieve a long cycle life of over 11,000 cycles at 16 mg cm-2 and 10 A g-1, rate capability (retaining nearly 80 mAh g-1 at 15 A g-1) and stable cycling performance under high mass loadings up to 100 mg cm-2. After extended cycling, the cement-graphite electrode retains its structural integrity. Multi-cell assemblies demonstrate scalability, while cost analysis shows cost savings associated with cement binders for molten-salt batteries.
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