Enhancing rate performance of dry-processed thick LiFePO4 cathodes for lithium-ion batteries

Solvent-free electrode manufacturing not only reduces energy consumption and cost, but also enables thick electrodes for high energy cells. However, thick electrodes often suffer from sluggish Li-ion diffusion, leading to low-capacity retention at fast charging. In this work, LiFePO 4 -based cathodes were dry-processed by binder fibrillation, and benchmarked with slurry-casted cathodes using a green solvent. By balancing thickness and porosity of dry-processed thick electrodes, we achieved similar C-rate performance as ∼50% thinner electrodes, such as 212 μm thick and 54.3% porosity vs. 99 μm thick and 34.5% porosity, leading to a significant enhancement of areal capacity by 47% at 0.1C and 72% at 1C. Moreover, a fair comparison of dry-processed cathodes against slurry-casted ones showed similar C-rate performance which was consistent with the ion diffusivities measured by GITT; however, dry-processed cathodes degraded faster during cycling at 0.5C. Consistently, XPS characterization revealed that dry-processed cathode formed larger amount of electrolyte decomposition products in cycling, such as carbonate compounds and Li x PO y F z . We believe it is due to higher exposure opportunities for cathode active particles to electrolyte within dry-processed electrodes, originated from the distinctive binder distribution versus slurry-casted ones. This study offers a new perspective on the adoption of dry electrode technology.

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Publication Details

Journal
Journal of Power Sources
Published
2026-09-16
DOI
https://doi.org/10.1016/j.jpowsour.2026.241511
Primary Topic
Advancements in Battery Materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Enhancing rate performance of dry-processed thick LiFePO4 cathodes for lithium-ion batteries

唐凤再, Mohamed Mamlouk, Jake Sheriff, Yongqing Fu et al.
Journal of Power Sources
Advancements in Battery Materials
article

Enhancing rate performance of dry-processed thick LiFePO4 cathodes for lithium-ion batteries

唐凤再, Mohamed Mamlouk, Jake Sheriff, Yongqing Fu, Jikai Zhang, Ruifeng Zhou, Chuan Cheng, Geoff West
article en

Abstract

Solvent-free electrode manufacturing not only reduces energy consumption and cost, but also enables thick electrodes for high energy cells. However, thick electrodes often suffer from sluggish Li-ion diffusion, leading to low-capacity retention at fast charging. In this work, LiFePO 4 -based cathodes were dry-processed by binder fibrillation, and benchmarked with slurry-casted cathodes using a green solvent. By balancing thickness and porosity of dry-processed thick electrodes, we achieved similar C-rate performance as ∼50% thinner electrodes, such as 212 μm thick and 54.3% porosity vs. 99 μm thick and 34.5% porosity, leading to a significant enhancement of areal capacity by 47% at 0.1C and 72% at 1C. Moreover, a fair comparison of dry-processed cathodes against slurry-casted ones showed similar C-rate performance which was consistent with the ion diffusivities measured by GITT; however, dry-processed cathodes degraded faster during cycling at 0.5C. Consistently, XPS characterization revealed that dry-processed cathode formed larger amount of electrolyte decomposition products in cycling, such as carbonate compounds and Li x PO y F z . We believe it is due to higher exposure opportunities for cathode active particles to electrolyte within dry-processed electrodes, originated from the distinctive binder distribution versus slurry-casted ones. This study offers a new perspective on the adoption of dry electrode technology.

Journal of Power SourcesVol. 696
Northumbria University (GB), University of Warwick (GB), Newcastle University (GB)
Royal Society, Newcastle University, Engineering and Physical Sciences Research Council
Responsible consumption and production
Openalex Percentile: Top 21%
Advancements in Battery Materials
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