Periodic Reporting for period 1 - HySoBatt (Hybrid solid electrolyte for safer rechargeable sodium batteries with higher energy density)
Período documentado: 2023-02-01 hasta 2025-01-31
Current solid-state ion batteries encounter significant hurdles, such as restricted compatibility of electrode materials and safety issues arising from the utilization of flammable organic liquid electrolytes. The HySoBatt project seeks to address these constraints by combining NASICON-type inorganic electrolytes with solid polymer electrolytes, resulting in a novel hybrid solid electrolyte (HSE) characterized by enhanced ionic conductivity and superior mechanical characteristics. This innovative electrolyte formulation is anticipated to augment battery energy density (~200 Wh/kg), prolong cycle life (>500 cycles), and markedly enhance safety by facilitating the utilization of sodium metal anodes
The research employs a multidisciplinary methodology, integrating materials chemistry, electrochemical engineering, and sophisticated characterization techniques. By refining the composition and microstructure of HSEs, the project will advance next-generation solid-state sodium battery technology, promoting European dominance in sustainable energy storage solutions.
Hybrid Solid Electrolyte Development:
Synthesized and characterized polymer-ceramic composite electrolytes to enhance ionic conductivity (>10⁻³ S/cm).
Improved interface compatibility to reduce Na dendrite formation and increase cycling stability.
Electrode Optimization:
Developed high-capacity Na-based cathodes, optimizing Na⁺ diffusion pathways.
Improved electrode-electrolyte interactions for enhanced structural stability.
Prototype Battery Assembly & Testing:
Fabricated solid-state SIB prototypes, achieving high energy density, extended cycle life, and improved safety.
Conducted electrochemical tests validating superior rate performance and temperature tolerance.
These advancements contribute to safer, more sustainable, and high-performance solid-state SIBs.
Key results include:
Hybrid Solid Electrolytes (HSEs): Enhanced ionic conductivity (>10⁻³ S/cm) and interface stability, reducing dendrite formation.
Optimized Cathodes: Improved Na⁺ diffusion and structural stability for higher energy density and cycle life.
Prototype Demonstration: Assembled solid-state SIBs with superior safety, temperature tolerance, and cycling stability.
Future impact includes reducing lithium/cobalt dependency, supporting EU battery regulations, and enabling industrial adoption via further demonstration, standardization, and commercialization efforts.
 
           
        