生物量(生态学)
热解
碳纤维
石墨烯
生物炭
环境科学
热解炭
材料科学
工艺工程
纳米技术
制浆造纸工业
废物管理
生态学
工程类
复合材料
复合数
生物
作者
Xiangdong Zhu,Litao Lin,Mingyue Pang,Chao Jia,Longlong Xia,Guosheng Shi,Shicheng Zhang,Yuanda Lu,Liming Sun,Fengbo Yu,Jie Gao,Zhelin He,Xuan Wu,Aodi Li,Liang Wang,Meiling Wang,Kai Cao,Weiguo Fu,Huakui Chen,Gang Li
标识
DOI:10.1038/s41467-024-47603-y
摘要
Abstract Flash Joule heating (FJH) is an emerging and profitable technology for converting inexhaustible biomass into flash graphene (FG). However, it is challenging to produce biomass FG continuously due to the lack of an integrated device. Furthermore, the high-carbon footprint induced by both excessive energy allocation for massive pyrolytic volatiles release and carbon black utilization in alternating current-FJH (AC-FJH) reaction exacerbates this challenge. Here, we create an integrated automatic system with energy requirement-oriented allocation to achieve continuous biomass FG production with a much lower carbon footprint. The programmable logic controller flexibly coordinated the FJH modular components to realize the turnover of biomass FG production. Furthermore, we propose pyrolysis-FJH nexus to achieve biomass FG production. Initially, we utilize pyrolysis to release biomass pyrolytic volatiles, and subsequently carry out the FJH reaction to focus on optimizing the FG structure. Importantly, biochar with appropriate resistance is self-sufficient to initiate the FJH reaction. Accordingly, the medium-temperature biochar-based FG production without carbon black utilization exhibited low carbon emission (1.9 g CO 2 -eq g −1 graphene), equivalent to a reduction of up to ~86.1% compared to biomass-based FG production. Undoubtedly, this integrated automatic system assisted by pyrolysis-FJH nexus can facilitate biomass FG into a broad spectrum of applications.
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