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Fluorination Molecular Engineering of Trimethyl Phosphite: A Multiscale Theoretical Study
Peiyan Li1, Jiayi Lin1, Chenyu Yang1
1School of Materials and New Energy, South China Normal University, Shanwei, 516600Guangdong, China.
Fluorinating trimethyl phosphite (TMPi) enhances electrolyte additives for high-voltage lithium-ion batteries. The study identifies TMPi_133 as an optimal additive, improving stability and performance without hindering ion transport.
Area of Science:
- Materials Science
- Electrochemistry
- Computational Chemistry
Background:
- Fluorination is crucial for advancing lithium-ion battery performance, addressing limitations in voltage, lifespan, and safety.
- Trimethyl phosphite (TMPi) is a phosphorus-based electrolyte additive known for flame retardancy and suppressing side reactions, but it lacks sufficient oxidation stability at high voltages.
Purpose of the Study:
- To systematically investigate the effects of fluorination on TMPi's electronic structure and properties for high-voltage lithium-ion battery applications.
- To identify optimal fluorinated TMPi derivatives as electrolyte additives that enhance stability and performance.
Main Methods:
- Theoretical investigation using quantum chemical calculations and molecular dynamics simulations.
- Systematic modification of TMPi through fluorination at varying positions and quantities.
- Analysis of electronic structure, oxidation stability, reduction activity, solvation structure, and ion transport properties.
Main Results:
- Fluorine substitution in TMPi lowers HOMO energy and enhances oxidation stability via electron-withdrawing effects.
- Moderate fluorination improves interphase formation, while increased fluorination optimizes reduction activity and weakens coordination.
- TMPi_133 was identified as the optimal additive, balancing excellent oxidation stability and film-forming capability with unimpeded ion transport.
Conclusions:
- Fluorinated TMPi derivatives offer tunable electronic properties and improved stability for high-voltage lithium-ion batteries.
- The study provides practical design strategies for developing advanced phosphite-based electrolyte additives.
- TMPi_133 demonstrates significant potential as a functional interfacial additive for superior battery performance.
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