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- W3208554889 endingPage "24570" @default.
- W3208554889 startingPage "24558" @default.
- W3208554889 abstract "Abstract Emerging machine learning (ML) methods are widely applied in chemistry and materials science studies and have led to a focus on data‐driven research. This Minireview summarizes the application of ML to rechargeable batteries, from the microscale to the macroscale. Specifically, ML offers a strategy to explore new functionals for density functional theory calculations and new potentials for molecular dynamics simulations, which are expected to significantly enhance the challenging descriptions of interfaces and amorphous structures. ML also possesses a great potential to mine and unveil valuable information from both experimental and theoretical datasets. A quantitative “structure–function” correlation can thus be established, which can be used to predict the ionic conductivity of solids as well as the battery lifespan. ML also exhibits great advantages in strategy optimization, such as fast‐charge procedures. The future combination of multiscale simulations, experiments, and ML is also discussed and the role of humans in data‐driven research is highlighted." @default.
- W3208554889 created "2021-11-08" @default.
- W3208554889 creator A5039837606 @default.
- W3208554889 creator A5048906215 @default.
- W3208554889 creator A5075448214 @default.
- W3208554889 creator A5076768386 @default.
- W3208554889 date "2021-08-20" @default.
- W3208554889 modified "2023-09-25" @default.
- W3208554889 title "Applying Machine Learning to Rechargeable Batteries: From the Microscale to the Macroscale" @default.
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