Hopping through the interfaces: a multiscale chemo-mechanic model for energy materials
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Mechanical damage arising from electrochemical processes in energy materials can alter significantly their mass transport capability, and overall performance of energy storage systems. The damage is frequently initiated at material's internal interfaces, subsequently disrupting ionic and electronic conductivity paths. The coupling between interfacial damage and ionic transport is not yet fully understood, and requires description of its origins at the nanoscale. This project will provide enhanced understanding of the damage-transport coupling for various interfaces in energy materials across the length scales by developing a novel data-driven multiscale methodology based on the Bayesian inference, linking first-principles calculations with the continuum modelling framework, and subject to physical constraints.
Mechanical damage arising from electrochemical processes in energy materials can alter significantly their mass (e.g. Li-ion) transport capability, and overall performance of energy storage systems. The damage is frequently initiated at material's internal interfaces at the microscale, subsequently disrupting ionic and electronic conductivity paths, and thus reducing electrochemical performance of energy materials. The coupling between interfacial damage and ionic transport is not yet fully understood, and requires detailed description of its origins at the nanoscale.
This project will provide enhanced understanding of the damage-transport coupling for various interfaces in energy materials across the length scales by developing a novel data-driven multiscale methodology linking first-principles calculations with the continuum modelling framework. That will simultaneously enable to identify relevant model parameters, account for their variability, and quantify their uncertainty. The ultimate interface model will be implemented within a finite-element approach, and applied to two case studies at the microscale: (a) intergranular damage within active electrode particles, and (b) interface damage between active particles and surrounding material (e.g. solid electrolyte), both subject to electrochemical cycling.
The project will also be linked to nanoscale experimental investigations carried out by the experimental partner (Prof Piper, EIC/WMG) to match modelling efforts with experiments.
University of Warwick | LEAD_ORG |
Lukasz Figiel | SUPER_PER |
Chantal Baer | STUDENT_PER |
Subjects by relevance
- Electrochemistry
- Energy
- Modelling (creation related to information)
Extracted key phrases
- Interface damage
- Energy material
- Ultimate interface model
- Energy storage system
- Mechanical damage
- Internal interface
- Intergranular damage
- Multiscale chemo
- Mass transport capability
- Transport coupling
- Ionic transport
- Mechanic model
- Multiscale methodology
- Electrochemical performance
- Electrochemical process