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Stabilizing the Interface of NASICON Solid Electrolyte against Li Metal with Atomic Layer Deposition
Yulong Liu1, Qian Sun1, Yang Zhao1
1Department of Mechanical and Materials Engineering , University of Western Ontario , London , Ontario N6A 5B9 , Canada.
Atomic layer deposition (ALD) stabilizes lithium aluminum titanium phosphate (LATP) solid electrolytes by coating them with Al2O3. This ALD coating enhances interface stability and battery performance, crucial for next-generation solid-state batteries.
Area of Science:
- Materials Science
- Electrochemistry
- Energy Storage
Background:
- Solid-state batteries offer enhanced safety and energy density.
- Solid-state electrolytes are critical for battery performance, requiring high ionic conductivity and stability.
- Lithium aluminum titanium phosphate (LATP) is a promising solid electrolyte but suffers from chemical instability with lithium metal.
Purpose of the Study:
- To stabilize the LATP/Li metal interface using atomic layer deposition (ALD).
- To investigate the effect of ALD-Al2O3 coating on LATP's electrochemical performance and interfacial stability.
- To understand the mechanism of interface stabilization.
Main Methods:
- Atomic Layer Deposition (ALD) of Al2O3 on LATP.
- Electrochemical cycling and impedance spectroscopy.
- Advanced characterization using high-resolution transmission electron microscopy-electron energy loss spectroscopy (HRTEM-EELS).
Main Results:
- ALD-Al2O3 coating significantly improved the cycling stability of LATP against Li metal.
- The coated LATP exhibited reduced voltage hysteresis and stable resistance over 600 hours.
- Characterization revealed suppressed lithium penetration and Ti4+ reduction at the interface.
- ALD effectively enhances the solid-state electrolyte/electrode interface stability.
Conclusions:
- ALD coating is a highly effective strategy for stabilizing the LATP/Li metal interface.
- This method significantly improves the performance and durability of solid-state batteries utilizing LATP electrolytes.
- The findings pave the way for practical applications of LATP in high-performance solid-state batteries.
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