Microscopic segregation dominated nano-interlayer boosts 4.5 V cyclability and rate performance for sulfide-based all-solid-state lithium batteries
Creators
- 1. Key Laboratory of Cluster Science of Ministry of Education Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials, School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Beijing, 100081 (China)
- 2. Beijing Key Laboratory for Green Catalysis and Separation, College of Environmental and Energy Engineering, Beijing University of Technology, Beijing, 100124 (China)
- 3. College of Materials Science and Opto‐Electronic Technology, University of Chinese Academy of Science, Beijing, 100049 (China)
- 4. Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing, 100081 (China)
- 5. Beijing Advanced Innovation Center for Intelligent Robots and Systems, Institute of Engineering Medicine, Beijing Institute of Technology, Beijing, 100081 (China)
- 6. Tianmu Lake Insititute of Advanced Energy Storage Technologies Co. Ltd., Liyang, Jiangsu, 213300 (China)
Description
To implement the growing requirement for higher energy density all-solid-state lithium batteries (ASSLBs), further increasing the working voltage of LiCoO (LCO) is a key to breaking through the bottleneck. However, LiCoO severe structural degradation and side reactions at the cathode interface obstruct the development of high-voltage sulfide-based ASSLBs (≥4.5 V). Herein, a nano-metric LiNbTiO (LNTO) coated LCO cathode where microscopic Ti and Nb segregation at the interface during cycling potentially stabilizes the cathode lattice, and minimizes side reactions, simultaneously, is designed. Advanced transmission electron microscopy reveals that the stable spinel phase minimizes the micro stress at the cathode interface, avoids structure fragmentation, and hence significantly enhances the long-term cyclic stability of LNTO@LCO @ 4.5 V. Moreover, the differential phase contrast scanning transmission electron microscopy (DPC-STEM) visualizes the nano-interlayer LNTO to boost Li migration at the cathode interface. Electrochemical impedance spectroscopy (EIS) reveals that sulfide-based cells with the LNTO nano-layer effectively reduce the interfacial resistance to 140 Ω compared to LiNbO (235 Ω) over 100 cycles. Therefore, 4.5 V sulfide-based ASSLBs offer gratifying long-cycle stability (0.5 C for 1000 cycles, 88.6%), better specific capacity, and rate performance (179.8 mAh g at 0.1 C, 97 mAh g at 2 C). (© 2022 Wiley‐VCH GmbH)
Availability note (English)
Available from: http://dx.doi.org/10.1002/aenm.202203703Additional details
Identifiers
Publishing Information
- Journal Title
- Advanced Energy Materials
- Journal Volume
- 13
- Journal Issue
- 3
- Journal Page Range
- p. 1-13
- ISSN
- 1614-6832
- CODEN
- ADEMBC
INIS
- Country of Publication
- Germany
- Country of Input or Organization
- Germany
- INIS RN
- 54023546
- Subject category
- S36: MATERIALS SCIENCE; S25: ENERGY STORAGE;
- Descriptors DEI
- CAPACITY; CATHODES; COATINGS; COBALT OXIDES; ELECTRIC BATTERIES; IMPEDANCE; INTERFACES; LAYERS; LITHIUM OXIDES; NIOBIUM OXIDES; PERFORMANCE; SCANNING ELECTRON MICROSCOPY; SEGREGATION; SPECTROSCOPY; SULFIDES; TITANIUM OXIDES; TRANSMISSION ELECTRON MICROSCOPY
- Descriptors DEC
- ALKALI METAL COMPOUNDS; CHALCOGENIDES; COBALT COMPOUNDS; ELECTROCHEMICAL CELLS; ELECTRODES; ELECTRON MICROSCOPY; ENERGY STORAGE SYSTEMS; ENERGY SYSTEMS; LITHIUM COMPOUNDS; MICROSCOPY; NIOBIUM COMPOUNDS; OXIDES; OXYGEN COMPOUNDS; REFRACTORY METAL COMPOUNDS; SULFUR COMPOUNDS; TITANIUM COMPOUNDS; TRANSITION ELEMENT COMPOUNDS
Optional Information
- Notes
- AID: 2203703