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Enhancing electro-chemo-mechanical properties of Micro-scale SiOx anode via an interactive graphene/Carboxymethyl cellulose composite network for high-performance Lithium-ion batteries

Authors
La, YunjiIm, HyunjiLee, LanleeHa, ChaeyeonShin, KyusoonJeong, GoojinKim, Young-Jun
Issue Date
Apr-2025
Publisher
Elsevier B.V.
Keywords
Carbon/binder domain; Carboxymethyl cellulose; Graphene; lithium-ion batteries; Silicon oxide
Citation
Sustainable Materials and Technologies, v.43
Indexed
SCOPUS
Journal Title
Sustainable Materials and Technologies
Volume
43
URI
https://scholarx.skku.edu/handle/2021.sw.skku/120482
DOI
10.1016/j.susmat.2025.e01281
ISSN
2214-9929
Abstract
Micron-sized SiOx anodes are gaining attention due to their improved cycling stability compared to Si anodes. However, they still face challenges related to volume expansion, which can compromise electrode integrity. To address this, a composite binder of graphene and carboxymethyl cellulose (Gr/CMC) was introduced to enhance the mechanical and electrochemical stability of SiOx electrodes. The strong interactions between Gr and CMC promote uniform distribution of electrode materials, which minimizes localized stress, reduces particle agglomeration, and maintains stable connectivity across the electrode. This uniformity supports consistent reactions and alleviates strain from volume expansion, preserving electrode structure and contributing to extended cycle life. The SiOx anode with the Gr/CMC binder demonstrated excellent electrochemical performance, including high reversible capacity, enhanced rate capability, and notable durability, achieving 86 % capacity retention over 300 cycles in a pouch-type full cell (3.5 mAh cm−2, 85 wt% SiOx anode). This study highlights the critical role of the Gr/CMC composite binder in ensuring superior performance of anodes with a high SiOx content, offering a promising approach for high-capacity lithium-ion batteries. © 2025 Elsevier B.V.
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