Periodic Reporting for period 1 - OPERA (DEVELOPMENT OF OPERANDO TECHNIQUES AND MULTISCALE MODELLING TO FACE THE ZERO-EXCESS SOLID-STATE BATTERY CHALLENGE)
Période du rapport: 2023-06-01 au 2024-11-30
Our main objective is to develop new methodologies that allow the experimental observation and further conceptual understanding to finally tailor the growth mechanisms involved in the Li anode formation in ZESSBs.
Furthermore, two types of novel versatile stages for operando studies under (a) bending and (b) compressive loads are being developed. These hermetically sealed operando stages, built for different synchrotons, are suitable for applying stacking or bending loads through piezo drivers (up to 100 MPa), allowing for specialized electrochemical and polarization measurements.
Advanced electrochemical characterization of Li deposition is performed in a solid-state Hull cell, to investigate the morphology of Li deposition as a function of applied current and stack pressure.
Operando electrochemical dilatometry and nucleation studies using ultra-fast transient methods are used to further understand Li deposition and growth behavior. These methods are combined with post-mortem SEM analysis.
Advanced characterization methods developed and performed are operando TEM, in situ and operando AFM, spatially resolved optical spectroscopies, CSnanoXRD and DFXM, HAXPES and PEEM. These methods are used to characterize morphology and stress development during Li deposition at the Li-LLZTO interface as well as deepening the understanding of Li deposition using lithiophilic interphases.
Next to advanced characterization, comprehensive modelling approaches are used to simulate the dendrite growth at the Li-SE interface and deposition Li behavior on different CC and interlayer materials. While first principle calculations were performed to support the screening for possible metals as interlayer materials, the AI assisted multiscale modelling framework is still under development.
Lastly, a reference full cell set-up is designed consisting of an LFP/PEO-cathode, LLZTO separator and Cu-CC. The full cell serves to validate findings from modelling and characterization approaches. Optimization strategies based on the findings of the project are implemented and tested by using the reference cell as a starting point.
The results will be updated during the second half of the project.