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石墨烯包覆生物炭的合成、表征及环境影响

Synthesis, characterization, and environmental implications of graphene-coated biochar.

机构信息

Department of Agricultural and Biological Engineering, University of Florida, Gainesville, FL 32611, United States.

出版信息

Sci Total Environ. 2012 Oct 1;435-436:567-72. doi: 10.1016/j.scitotenv.2012.07.038. Epub 2012 Aug 18.

Abstract

Biochar has attracted much research attention recently because of its potential applications in many environmental areas. In this work, the biochar technology was combined with the emerging graphene technology to create a new engineered graphene-coated biochar from cotton wood. The biomass feedstock was first treated with graphene/pyrene-derivative and was then annealed at 600°C in a quartz tube furnace under N(2) environment. Laboratory characterization with different microscopy and spectrometry tools showed that the graphene sheets were "soldered" by the pyrene molecules on the biochar surface during the annealing process. Thermogravimetric analysis showed that the graphene "skin" could improve the thermal stability of the biochar, making the engineered biochar a better carbon sequester for large scale land applications. Batch sorption experimental results indicated that the graphene-coated biochar has excellent adsorption ability of polycyclic aromatic hydrocarbons (PAHs) with a maximum methylene blue adsorption capacity of 174 mg g(-1), which is more than 20 times higher than that of the unmodified cotton wood biochar and comparable to those of some physically or chemically activated carbons. The enhanced adsorption of methylene blue on the graphene-coated biochar is mainly controlled by the strong π-π interactions between aromatic molecules and the graphene sheets on biochar surface. It is anticipated that this novel, facile, and low-cost method can be expanded to other carbon-rich materials to create engineered biochar for various environmental applications.

摘要

生物炭由于其在许多环境领域的潜在应用而引起了广泛的研究关注。在这项工作中,将生物炭技术与新兴的石墨烯技术相结合,从棉花木材中制造出一种新型的工程化石墨烯涂覆生物炭。生物质原料首先用石墨烯/芘衍生物处理,然后在石英管炉中于 N(2)环境下在 600°C 下退火。使用不同的显微镜和光谱工具进行的实验室特性研究表明,在退火过程中,石墨烯片通过芘分子“焊接”在生物炭表面上。热重分析表明,石墨烯“表皮”可以提高生物炭的热稳定性,使工程生物炭成为大规模土地应用中更好的碳隔离物。批量吸附实验结果表明,石墨烯涂覆的生物炭对多环芳烃(PAHs)具有优异的吸附能力,最大亚甲基蓝吸附容量为 174 mg g(-1),比未修饰的棉花木材生物炭高 20 多倍,与一些物理或化学活化碳相当。亚甲基蓝在石墨烯涂覆生物炭上的增强吸附主要受芳香族分子与生物炭表面上的石墨烯片之间的强π-π相互作用控制。预计这种新颖、简便、低成本的方法可以扩展到其他富碳材料,以创建用于各种环境应用的工程化生物炭。

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