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Surface-Confined Disordered Hydrogen Bonds Enable Efficient Lithium Transport in All-Solid-State PEO-Based Lithium
You Fan1, Oleksandr I Malyi2, Huicai Wang1
1College of Chemical Engineering, Fuzhou University, Fuzhou, 350116, China.
Angewandte Chemie (International Ed. in English)
|January 27, 2025
Summary
Researchers developed a new disordered H-bond system for polyethylene oxide (PEO)-based solid-state electrolytes. This innovation enhances lithium-ion transport and battery stability, improving performance in all-solid-state lithium batteries (ASSLBs).
Area of Science:
- Materials Science
- Electrochemistry
- Polymer Science
Background:
- Polyethylene oxide (PEO)-based electrolytes are crucial for developing safe and high-energy-density all-solid-state lithium batteries (ASSLBs).
- Inefficient lithium-ion (Li+) transport in PEO limits battery rate performance and stability.
- Regulating hydrogen bonds (H-bonds) is key for Li+ transport, but challenges include electrochemical instability and restricted mobility.
Purpose of the Study:
- To overcome limitations in PEO-based electrolytes by developing a novel surface-confined disordered H-bond system.
- To improve Li+ transport and electrochemical stability for enhanced ASSLB performance.
Main Methods:
- Design and synthesis of a surface-confined disordered H-bond system within PEO-based electrolytes.
- Utilizing stable donor-acceptor interactions to create a loosened chain segment/ion arrangement.
- Fabrication and testing of a lithium iron phosphate (LiFePO4)-based ASSLB using the developed electrolyte.
Main Results:
- The new system inhibited PEO crystallization, weakened Li+ coordination, and entrapped anions, facilitating efficient Li+ transport.
- The LiFePO4-based ASSLB achieved over 400 cycles at 1.0 C and 65°C with 87.5% capacity retention.
- Performance surpassed most reported polymer-based ASSLBs, demonstrating improved cycle life and stability.
Conclusions:
- Confined disordered H-bonds are vital for optimizing Li+ transport in polymer-based ASSLBs.
- This approach offers a promising strategy for designing advanced solid-state electrolytes.
- The study paves the way for future high-performance and safe all-solid-state batteries.
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