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DandeLiion v1: An Extremely Fast Solver for the Newman Model of Lithium-Ion  Battery (Dis)charge - IOPscience
DandeLiion v1: An Extremely Fast Solver for the Newman Model of Lithium-Ion Battery (Dis)charge - IOPscience

Influence of the Electrolyte Salt Concentration on the Rate Capability of  Ultra‐Thick NCM 622 Electrodes - Kremer - 2020 - Batteries & Supercaps -  Wiley Online Library
Influence of the Electrolyte Salt Concentration on the Rate Capability of Ultra‐Thick NCM 622 Electrodes - Kremer - 2020 - Batteries & Supercaps - Wiley Online Library

Controlling electrochemical growth of metallic zinc electrodes: Toward  affordable rechargeable energy storage systems
Controlling electrochemical growth of metallic zinc electrodes: Toward affordable rechargeable energy storage systems

Quantifying the factors limiting rate performance in battery electrodes |  Nature Communications
Quantifying the factors limiting rate performance in battery electrodes | Nature Communications

Li metal deposition and stripping in a solid-state battery via Coble creep  | Nature
Li metal deposition and stripping in a solid-state battery via Coble creep | Nature

Modeling Electrochemical Processes in a Solid-State Lithium-Ion Battery |  COMSOL Blog
Modeling Electrochemical Processes in a Solid-State Lithium-Ion Battery | COMSOL Blog

1: Schematic of the Doyle-Fuller-Newman model [6]. The model considers... |  Download Scientific Diagram
1: Schematic of the Doyle-Fuller-Newman model [6]. The model considers... | Download Scientific Diagram

Modeling Electrochemical Processes in a Solid-State Lithium-Ion Battery |  COMSOL Blog
Modeling Electrochemical Processes in a Solid-State Lithium-Ion Battery | COMSOL Blog

Electrochemical schematic diagram of the power lithium-ion battery model |  Download Scientific Diagram
Electrochemical schematic diagram of the power lithium-ion battery model | Download Scientific Diagram

Observer design for the Doyle–Fuller–Newman Li-ion battery model without  electrolyte dynamics - ScienceDirect
Observer design for the Doyle–Fuller–Newman Li-ion battery model without electrolyte dynamics - ScienceDirect

Observer design for the Doyle–Fuller–Newman Li-ion battery model without  electrolyte dynamics - ScienceDirect
Observer design for the Doyle–Fuller–Newman Li-ion battery model without electrolyte dynamics - ScienceDirect

Schematic illustration of Newman's electrochemical model based on 1D (í...  | Download Scientific Diagram
Schematic illustration of Newman's electrochemical model based on 1D (í... | Download Scientific Diagram

A Li2S-based all-solid-state battery with high energy and superior safety
A Li2S-based all-solid-state battery with high energy and superior safety

Python Battery Mathematical Modelling (PyBaMM)
Python Battery Mathematical Modelling (PyBaMM)

A 3D schematic of a Li-ion cell (on the right-not to scale) consisting... |  Download Scientific Diagram
A 3D schematic of a Li-ion cell (on the right-not to scale) consisting... | Download Scientific Diagram

Parameter estimation of an electrochemistry‐based lithium‐ion battery model  using a two‐step procedure and a parameter sensitivity analysis - Jin -  2018 - International Journal of Energy Research - Wiley Online Library
Parameter estimation of an electrochemistry‐based lithium‐ion battery model using a two‐step procedure and a parameter sensitivity analysis - Jin - 2018 - International Journal of Energy Research - Wiley Online Library

1: Schematic of the Doyle-Fuller-Newman model [6]. The model considers... |  Download Scientific Diagram
1: Schematic of the Doyle-Fuller-Newman model [6]. The model considers... | Download Scientific Diagram

Parameter estimation of the Doyle–Fuller–Newman model for Lithium-ion  batteries by parameter normalization, grouping, and sensitivity analysis -  ScienceDirect
Parameter estimation of the Doyle–Fuller–Newman model for Lithium-ion batteries by parameter normalization, grouping, and sensitivity analysis - ScienceDirect

Characterising lithium-ion electrolytes via operando Raman  microspectroscopy | Nature Communications
Characterising lithium-ion electrolytes via operando Raman microspectroscopy | Nature Communications

Batteries | Free Full-Text | Parameterization and Validation of an  Electrochemical Thermal Model of a Lithium-Ion Battery | HTML
Batteries | Free Full-Text | Parameterization and Validation of an Electrochemical Thermal Model of a Lithium-Ion Battery | HTML

Li-Ion Battery: Heterogeneous Alternative to the Newman Model | COMSOL Blog
Li-Ion Battery: Heterogeneous Alternative to the Newman Model | COMSOL Blog

Practical assessment of the performance of aluminium battery technologies |  Nature Energy
Practical assessment of the performance of aluminium battery technologies | Nature Energy

Batteries | Free Full-Text | A Review on Temperature-Dependent  Electrochemical Properties, Aging, and Performance of Lithium-Ion Cells |  HTML
Batteries | Free Full-Text | A Review on Temperature-Dependent Electrochemical Properties, Aging, and Performance of Lithium-Ion Cells | HTML

Improving Batteries by Modeling the Materials Space | BIOVIA Blog
Improving Batteries by Modeling the Materials Space | BIOVIA Blog

Schematic of the 1D electrochemical model in the x-direction of the... |  Download Scientific Diagram
Schematic of the 1D electrochemical model in the x-direction of the... | Download Scientific Diagram

The effect of electrode design parameters on battery performance and  optimization of electrode thickness based on the electrochemical–thermal  coupling ... - Sustainable Energy & Fuels (RSC Publishing)  DOI:10.1039/C8SE00503F
The effect of electrode design parameters on battery performance and optimization of electrode thickness based on the electrochemical–thermal coupling ... - Sustainable Energy & Fuels (RSC Publishing) DOI:10.1039/C8SE00503F

Improving Batteries by Modeling the Materials Space | BIOVIA Blog
Improving Batteries by Modeling the Materials Space | BIOVIA Blog