Department of Environmental Science and Engineering, Fudan University, Shanghai, 200433, China.
State Key Laboratory of Soil and Sustainable Agriculture, Institute of Soil Science, Chinese Academy of Sciences, Nanjing, 210018, China.
Nat Commun. 2024 Apr 15;15(1):3218. doi: 10.1038/s41467-024-47603-y.
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-eq g 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.
闪光焦耳加热(FJH)是一种新兴的、有利可图的技术,可将取之不尽的生物质转化为闪光石墨烯(FG)。然而,由于缺乏集成设备,连续生产生物质 FG 具有挑战性。此外,在交流闪光焦耳加热(AC-FJH)反应中,大量热解挥发物释放所需的过多能量分配以及对炭黑的利用所导致的高碳足迹,加剧了这一挑战。在这里,我们创建了一个具有面向能源需求分配的集成自动系统,以实现具有更低碳足迹的连续生物质 FG 生产。可编程逻辑控制器灵活协调 FJH 模块化组件,实现生物质 FG 生产的周转。此外,我们提出了热解-闪光焦耳加热的结合,以实现生物质 FG 的生产。首先,我们利用热解释放生物质热解挥发物,然后进行闪光焦耳加热反应,以专注于优化 FG 结构。重要的是,具有适当电阻的生物炭足以引发闪光焦耳加热反应。因此,无需使用炭黑即可在中温下生产基于生物炭的 FG,其碳排放较低(1.9 g CO-eq g 石墨烯),与基于生物质的 FG 生产相比,排放量减少了高达约 86.1%。毫无疑问,这种由热解-闪光焦耳加热结合辅助的集成自动系统,可以促进生物质 FG 在更广泛的应用领域中的应用。