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Lightweight and binder-free sandwich anode of carbon-coated SiOx thin films on free-standing carbon nanofibers for enhanced lithium-ion storageopen access

Authors
Kim, Na-YeongNa, HyunMinKim, IlgyuBehera, SubhashreePark, Jeong-HoChoi, WonchangKim, Hyun-SukJung, Ji-Won
Issue Date
Mar-2026
Publisher
Elsevier B.V.
Keywords
Anodes; Carbon nanofibers; Chemical vapor deposition; Radio frequency magnetron sputtering; Silicon oxides; Thin films
Citation
Chemical Engineering Journal, v.531, pp 1 - 12
Pages
12
Indexed
SCIE
SCOPUS
Journal Title
Chemical Engineering Journal
Volume
531
Start Page
1
End Page
12
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/63886
DOI
10.1016/j.cej.2026.173874
ISSN
1385-8947
1873-3212
Abstract
High–capacity silicon oxide (SiO<inf>x</inf>)–based anodes show great potential for lithium–ion batteries (LiBs) due to their superior theoretical capacity. However, their practical application is hindered because of their severe volume expansion, poor electrical conductivity, and unstable solid–electrolyte interphase (SEI). Herein, we present a novel flexible anode architecture, where a thin–film amorphous SiO<inf>x</inf> layer is uniformly deposited between ultralight, free–standing carbon nanofiber mats and a carbon encapsulation layer, forming a robust C–SiO<inf>x</inf>–C sandwich structure. The optimized C–SiO<inf>x</inf>–C composite demonstrates exceptional electrochemical performance, including outstanding cycling stability (specific capacity of 1120 mAh g−1, capacity retention of ∼88.8% over 300 cycles at 0.2 A g−1), enhanced rate capability, and markedly reduced SEI resistance compared with uncoated SiO<inf>x</inf>–C. Electrochemical impedance spectroscopy and galvanostatic intermittent titration reveal that the carbon coating effectively enhances electronic conductivity, stabilizes the SEI, and promotes lithium–ion diffusion kinetics (9.83 × 10 cm2 s−1). Furthermore, full–cell tests of our SiO<inf>x</inf> anode paired with a thin–film NCM622 cathode exhibits stable cycling for over 400 cycles, affirming its potential for next–generation, fast–charging, and high–energy–density LiBs systems. © 2026 Elsevier B.V.
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