Tracking solid electrolyte interphase dynamics using operando fibre-optic infra-red spectroscopy and multivariate
Cédric Leau1,2,3, Yu Wang1,2, Charlotte Gervillié-Mouravieff1,2
1Chimie du Solide et de l'Énergie, UMR 8260, Collège de France, Paris, France.
Nature Communications
|January 17, 2025
Summary
Researchers developed a new method to study the solid electrolyte interphase (SEI) in batteries. This technique improves understanding of SEI formation and stability, crucial for battery performance and safety.
Area of Science:
- Materials Science
- Electrochemistry
- Spectroscopy
Background:
- The solid electrolyte interphase (SEI) is critical for battery performance, reliability, and safety.
- Understanding SEI nucleation, growth, and composition is challenging due to its dynamic nature.
Purpose of the Study:
- To develop an advanced method for in-situ analysis of SEI evolution during battery operation.
- To provide molecular-level insights into SEI formation and identify factors influencing its stability.
Main Methods:
- Operando Infra-red Fibre-optic Evanescent Wave Spectroscopy (IR-FEWS) using chalcogenide fibers.
- Multivariate Curve Resolution by Alternating Least Squares (MCR-ALS) for spectral data analysis.
- Investigation of SEI formation on different anode materials and electrolytes.
Main Results:
- Established molecular fingerprints for identifying SEI reaction products.
- Observed distinct SEI evolution patterns based on electrolyte and anode material variations.
- Identified intrinsic instability in lithium titanate's SEI, characterized by ongoing carbonate formation.
Conclusions:
- The combined IR-FEWS and MCR-ALS approach offers a powerful tool for understanding SEI dynamics.
- This method bridges the gap between empirical observations and theoretical understanding of SEI formation.
- The findings pave the way for designing more stable and reliable battery systems.


