Affiliation:
1. The University of Texas at Austin
2. SLAC National Accelerator Laboratory
3. Purdue University
4. Central South University
5. Virginia Tech
6. Argonne National Laboratory
7. Purdue University West Lafayette
Abstract
Abstract
To improve lithium-ion battery technology, it is essential to probe and comprehend the microscopic dynamic processes that occur in a real-world composite electrode under operating conditions. The primary and secondary particles are the structural building blocks of battery cathode electrodes. Their dynamic inconsistency has profound but not well-understood impacts. In this research, we combine operando coherent multi-crystal X-ray diffraction and optical microscopy to examine the chemical dynamics in local domains of layered oxide cathode. Our results not only pinpoint the asynchronicity of the lithium (de)intercalation at the sub-particle level, but also reveal sophisticated diffusion kinetics and reaction patterns, involving various localized processes, e.g., chemical onset, reaction front propagation, domains equilibration, and non-rigid deformation. These observations shed new lights onto the activation and degradation mechanisms of state-of-the-art battery cathode materials.
Publisher
Research Square Platform LLC