热解
闪光灯(摄影)
木质素
焦耳加热
碳纤维
材料科学
化学工程
纳米技术
化学
有机化学
工程类
复合材料
物理
复合数
光学
作者
Wei Guan,Zhiguo Dong,Hao Jiang,Lei Chen,Haiping Yang,Tianjin Li,Shuangxia Yang,Dongliang Hua,Jingai Shao,Jie Yu
标识
DOI:10.1016/j.cej.2024.158813
摘要
• Flash Joule heating efficiently converts lignin into high-value graphitic carbon . • Hydrogen and aromatic monomer yields increase significantly with rising voltage. • Aromatic rings cleave and grow at the edges of microcrystals to form graphene. • Epoxy-LFG composites exhibit high flexural strength and photothermal properties. • The lignin FJH process is low-cost and environmentally friendly. Graphitic carbon is highly valued for its exceptional properties and wide applications; however, the efficient graphitization of lignin remains a significant challenge due to its complex structure. This study investigates the graphitization of lignin driven via flash Joule heating (FJH), providing a comprehensive analysis of the physicochemical structure of the flash graphitic carbon (LFG) and the composition of gaseous and liquid by-products under varying voltages. Additionally, the pyrolysis kinetics and mechanisms of lignin under FJH are explored. The results show that FJH efficiently converts lignin into graphitic carbon, while also generating hydrogen-rich syngas and increased yields of aromatic monomers. Furthermore, using LFG as a filler in epoxy resin significantly enhances the flexural strength and photothermal properties of the composite. This work highlights the potential of the lignin FJH process as an effective and environmentally friendly alternative to traditional methods for producing high-value carbon materials.
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