Analysis of microstructural effects in multi-layer lithium-ion battery cathodes
- 1. Ulm University, Institute of Stochastics, Helmholtzstraße 18, Ulm 89069 (Germany)
- 2. German Aerospace Center (DLR), Institute of Engineering Thermodynamics, Pfaffenwaldring 38-40, Stuttgart 70569 (Germany)
- 3. Helmholtz Institute for Electrochemical Energy Storage (HIU), Helmholtzstraße 11, Ulm 89081 (Germany)
- 4. ZSW-Zentrum für Sonnenenergie- und Wasserstoff-Forschung Baden-Württemberg, Helmholtzstraße 8, Ulm 89081 (Germany)
Description
Highlights: • The interface between the layers of a two-layer electrode is investigated. • Statistical analysis of the 3D microstructure is performed. • Results are compared to electrochemical characterization and simulations. • It is found that the particle connectivity decreases at the interface. • This leads to higher electric resistivity. -- Abstract: A possible way to increase the energy density in lithium-ion batteries, and, at the same time, reduce the production costs, is to use thicker electrodes. However, transport limitations can occur in thick electrodes, leading to a drawback in performance. A way to mitigate this problem is a more sophisticated microstructure of the electrode, using, e.g., structural gradients. This can, for instance, be achieved by multi-layer casting, i.e., casting and drying of a first layer, and then adding a second layer. An important question is how the interface between the two layers is shaped and how the corresponding microstructure influences the electrochemical performance. In the present paper, two different two-layer cathodes are analyzed and compared to single-layer cathodes of the same thickness. The analysis involved tomographic imaging, a statistical analysis of the 3D microstructure of the active material particle systems with a focus on the interface between the layers, and electrochemical characterization of the active material systems using experimental measurements as well as electrochemical simulations. The analysis showed that at the interface the connectivity of active material particles decreases, which results in higher electric resistivity. This effect is stronger if an intermediate calendering step is performed, i.e., the first layer is calendered before casting the second layer.
Additional details
Identifiers
- DOI
- 10.1016/j.matchar.2019.02.031;
- PII
- S1044580318319089;
Publishing Information
- Journal Title
- Materials Characterization
- Journal Volume
- 151
- Journal Page Range
- p. 166-174
- ISSN
- 1044-5803
- CODEN
- MACHEX
INIS
- Country of Publication
- United States
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 55031006
- Subject category
- S36: MATERIALS SCIENCE;
- Descriptors DEI
- CASTING; CASTINGS; CATHODES; COMPUTERIZED SIMULATION; ELECTRIC CONDUCTIVITY; ELECTROCHEMISTRY; ENERGY DENSITY; IMAGE PROCESSING; IMAGES; LITHIUM ION BATTERIES; MICROSTRUCTURE; PERFORMANCE; THICKNESS; TOMOGRAPHY
- Descriptors DEC
- CHEMISTRY; DIAGNOSTIC TECHNIQUES; DIMENSIONS; ELECTRIC BATTERIES; ELECTRICAL PROPERTIES; ELECTROCHEMICAL CELLS; ELECTRODES; ENERGY STORAGE SYSTEMS; ENERGY SYSTEMS; FABRICATION; PHYSICAL PROPERTIES; PROCESSING; SIMULATION
Optional Information
- Copyright
- Copyright (c) 2019 Elsevier Inc. All rights reserved.