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Synthesis and electrochemical performance of electrostatic self-assembled nano-silicon@N-doped reduced graphene oxide/carbon nanofibers composite as anode material for lithium-ion batteries

Title
Synthesis and electrochemical performance of electrostatic self-assembled nano-silicon@N-doped reduced graphene oxide/carbon nanofibers composite as anode material for lithium-ion batteries
Author(s)
Cong, RuyePark, Hyun-HoJo, MinsangLee, HochunLee, Chang-Seop
DGIST Authors
Cong, RuyePark, Hyun-HoJo, MinsangLee, HochunLee, Chang-Seop
Issued Date
2021-08
Type
Article
Author Keywords
Anode materialCarbon nanofibersLithium-ion batteryNitrogen-doped grapheneSilicon nanoparticles
Keywords
CARBON NANOFIBERSOXIDESINANOPARTICLESELECTRODEMEMBRANESHELLFILM
ISSN
1420-3049
Abstract
Silicon-carbon nanocomposite materials are widely adopted in the anode of lithium-ion batteries (LIB). However, the lithium ion (Li+) transportation is hampered due to the significant accumulation of silicon nanoparticles (Si) and the change in their volume, which leads to decreased battery performance. In an attempt to optimize the electrode structure, we report on a self-assembly synthesis of silicon nanoparticles@nitrogen-doped reduced graphene oxide/carbon nanofiber (Si@N-doped rGO/CNF) composites as potential high-performance anodes for LIB through electrostatic attraction. A large number of vacancies or defects on the graphite plane are generated by N atoms, thus providing transmission channels for Li+ and improving the conductivity of the electrode. CNF can maintain the stability of the electrode structure and prevent Si from falling off the electrode. The three-dimensional composite structure of Si, N-doped rGO, and CNF can effectively buffer the volume changes of Si, form a stable solid electrolyte interface (SEI), and shorten the transmission distance of Li+ and the electrons, while also providing high conductivity and mechanical stability to the electrode. The Si@N-doped rGO/CNF electrode outperforms the Si@N-doped rGO and Si/rGO/CNF electrodes in cycle performance and rate capability, with a reversible specific capacity reaching 1276.8 mAh/g after 100 cycles and a Coulomb efficiency of 99%. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.
URI
http://hdl.handle.net/20.500.11750/15325
DOI
10.3390/molecules26164831
Publisher
MDPI AG
Related Researcher
  • 이호춘 Lee, Hochun
  • Research Interests Lithium-ion batteries; Novel Materials for rechargeable batteries; Novel energy conversion;storage systems; Electrochemistry; 리튬이차전지; 이차전지용 신규 전극 및 전해액; 신규 에너지변환 및 저장 시스템; 전기화학
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Appears in Collections:
Department of Energy Science and Engineering Electrochemistry Laboratory for Sustainable Energy(ELSE) 1. Journal Articles

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