Highly‐aligned ultra‐thick gel‐based cathodes unlocking ultra‐high energy density batteries
File(s)eem2.12252.pdf (11.51 MB)
Accepted version
Author(s)
Type
Journal Article
Abstract
Increasing electrode thickness can substantially enhance the specific energy of lithium-ion batteries, however ionic transport, electronic conductivity and ink rheology are current barriers to adoption. Here a novel approach using a mixed xanthan gum and locust bean gum binder to construct ultra-thick electrodes is proposed to address above issues. After combining aqueous binder with single walled carbon nanotubes (SWCNT), active material (LiNi0.8Co0.1Mn0.1O2) and subsequent vacuum freeze drying, highly-aligned and low tortuosity structures with a porosity of ca. 50% can be achieved with an average pore size of 10 μm, whereby the gum binder-SWCNT-NMC811 forms vertical structures supported by tissue-like binder/SWCNT networks allowing for excellent electronic conducting phase percolation. As a result, ultra-thick electrodes with a mass loading of about 511 mg·cm-2 and 99.5 wt% active materials have been demonstrated with a remarkable areal capacity of 79.3 mAh·cm−2, which is the highest value reported so far. This represents a >25x improvement compared to conventional electrodes with an areal capacity of about 3 mAh·cm-2. This route also can be expanded to other electrode materials, such as LiFePO4 and Li4Ti5O12, and thus opens the possibility for low-cost and sustainable ultra-thick electrodes with increased specific energy for future lithium-ion batteries.
Date Issued
2022-10-01
Date Acceptance
2021-08-01
Citation
Energy & Environmental Materials, 2022, 5 (4), pp.1332-1339
ISSN
2575-0356
Publisher
Wiley
Start Page
1332
End Page
1339
Journal / Book Title
Energy & Environmental Materials
Volume
5
Issue
4
Copyright Statement
Copyright reserved
Identifier
https://onlinelibrary.wiley.com/doi/10.1002/eem2.12252
Subjects
Science & Technology
Technology
Materials Science, Multidisciplinary
Materials Science
binder
gel-based cathodes
high areal capacity
lithium-ion battery
ultra-thick electrodes
LI-ION BATTERY
LITHIUM
ELECTRODES
PERFORMANCE
BINDERS
CHARGE
COST
Publication Status
Published
Article Number
eem2.12252
Date Publish Online
2021-08-02