石墨烯
材料科学
导电体
化学工程
甲烷
热解
等离子体
热的
导电的
非热等离子体
锂离子电池的纳米结构
热分解法
纳米技术
作者
Gwangbeom Yang,Hyeokjun kang,Su-Bin Yang,Yong Hee Lee,Sooseok Choi
标识
DOI:10.5757/asct.2026.35.1.39
摘要
In this study, methane (CH 4 ), a greenhouse gas (GHG), was converted into graphene through thermal plasma pyrolysis, and its electrochemical performance was evaluated when applied as a conductive additive in lithium-ion battery anodes.CH 4 pyrolysis using a triple plasma torch system with 30 kW input power achieved a CH 4 conversion of 99.48 % and a hydrogen selectivity of 84.65 %.The synthesized graphene exhibited superior crystallinity compared to the commercial conductive additive Super-P, as confirmed by X-ray diffraction and Raman analysis, with an I D /I G ratio of 0.46.Electrical conductivity was 3.15 10 3 S/m, higher than Super-P, and the specific surface area was 158 m 2 /g, more than twice that of Super-P.Battery performance evaluation showed that electrodes with a 1:1 mixing ratio of Super-P and graphene recorded the best performance with a discharge capacity of 286 mAh/g at the 50th cycle.When graphene content exceeded 75 %, capacity decreased sharply due to nanosheet aggregation, which was also confirmed through electrochemical impedance analysis.This study experimentally demonstrated that graphene synthesized via CH 4 pyrolysis has practical applicability as a battery conductive additive and represents a process capable of simultaneously achieving GHG reduction and high-value-added material production.
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