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
