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MULTIBAT: Unified workflow for fast electrochemical 3D simulations of lithium-ion cells combining virtual stochastic microstructures, electrochemical degradation models and model order reduction., , , , , , , , , and . J. Comput. Science, (2019)Fast-charging performance and optimal thermal management of large-format full-tab cylindrical lithium-ion cells under varying environmental conditions, , , , , and . Journal of power sources, (2023)Machine Learning-Based Lifetime Prediction of Lithium-Ion Cells, , , , , , and . Advanced science, 9 (29): 2200630 (2022)Modeling of Electron-Transfer Kinetics in Magnesium Electrolytes : Influence of the Solvent on the Battery Performance, , , , , , , , , and 2 other author(s). ChemSusChem, 14 (21): 4820-4835 (2021)Degradation Effects in Metal-Sulfur Batteries, , , , , , , and . ACS applied energy materials, 4 (3): 2365-2376 (2021)Insights into Self-Discharge of Lithium- and Magnesium-Sulfur Batteries, , , , , , , and . ACS applied energy materials, 3 (9): 8457-8474 (2020)Modeling of Species and Charge Transport in Li-Ion Batteries Based on Non-equilibrium Thermodynamics., , and . NMA, volume 6046 of Lecture Notes in Computer Science, page 329-337. Springer, (2010)Physical modeling of polymer-electrolyte membrane fuel cells: Understanding water management and impedance spectra, , , , and . Journal of Power Sources, (2018)Physical modeling of chemical membrane degradation in polymer electrolyte membrane fuel cells: Influence of pressure, relative humidity and cell voltage, , and . Journal of Power Sources, (2019)