Ultrahigh-Mass-Loading Electrodes With Enhanced Homogeneity Using a High-Concentration Slurry for Lithium-Ion Batteriesopen access
- Authors
- Park, Jun Kyu; Shin, Woohyeon; Jo, Woohyeon; Lee, Hyo-Jeong; Jeon, Won-Yong; Ahn, Jinho; Yoon, Jihee; Jeong, Yea-Ji; Oh, Joonyoung; Kang, Minji; Choi, Min-Jae; Joo, Jin; Kim, Jongsoon; Cho, Seong-Keun; Park, Jun Dong; Nam, Jaewook; Yoo, Jung-Keun
- Issue Date
- Jan-2026
- Publisher
- John Wiley & Sons Australia, Ltd
- Keywords
- cathodes; dispersibility; dispersion solution; high-mass-loading; lithium-ion batteries
- Citation
- Carbon Energy, v.8, no.1
- Indexed
- SCIE
SCOPUS
- Journal Title
- Carbon Energy
- Volume
- 8
- Number
- 1
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/62184
- DOI
- 10.1002/cey2.70108
- ISSN
- 2637-9368
2637-9368
- Abstract
- Strategies for achieving high-energy-density lithium-ion batteries include using high-capacity materials such as high-nickel NCM, increasing the active material content in the electrode by utilizing high-conductivity carbon nanotubes (CNT) conductive materials, and electrode thickening. However, these methods are still limited due to the limitation in the capacity of high-nickel NCM, aggregation of CNT conductive materials, and nonuniform material distribution of thick-film electrodes, which ultimately damage the mechanical and electrical integrity of the electrode, leading to a decrease in electrochemical performance. Here, we present an integrated binder-CNT composite dispersion solution to realize a high-solids-content (> 77 wt%) slurry for high-mass-loading electrodes and to mitigate the migration of binder and conductive additives. Indeed, the approach reduces solvent usage by approximately 30% and ensures uniform conductive additive-binder domain distribution during electrode manufacturing, resulting in improved coating quality and adhesive strength for high-mass-loading electrodes (> 12 mAh cm(-2)). In terms of various electrode properties, the presented electrode showed low resistance and excellent electrochemical properties despite the low CNT contents of 0.6 wt% compared to the pristine-applied electrode with 0.85 wt% CNT contents. Moreover, our strategy enables faster drying, which increases the coating speed, thereby offering potential energy savings and supporting carbon neutrality in wet-based electrode manufacturing processes.
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Collections - College of Engineering > Department of Chemical and Biochemical Engineering > 1. Journal Articles

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