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首页> 外文期刊>Journal of Materials Science >Large-scale synthesis of porous graphene through nanoscale carbothermal reduction etching
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Large-scale synthesis of porous graphene through nanoscale carbothermal reduction etching

机译:纳米碳热还原刻蚀大规模合成多孔石墨烯

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Porous graphene, which features nanoscaled pores on the sheets, has shown great potential in many technologically important industries. However, the conversional approaches for the synthesis of porous graphene including high-energy techniques and template etching/growth methods are generally conducted on substrates with high cost and low throughput. Herein, we demonstrate a general and scalable synthetic method for porous graphene via carbothermal reduction reaction using monodisperse zinc oxide nanoparticles. The results indicate that ZnO nanoparticles were first attached on graphene oxide nanosheets by electrostatic interaction, and then undergone a carbothermal reduction reaction at 800 A degrees C to produce the pores on the sheets. While graphene oxide nanosheets were thermally reduced to graphene, all the by-products (carbon monoxide, carbon dioxide, and zinc) escaped from the final products simultaneously. The characterizations of the obtained porous graphene reveal that the pore size is about 11 nm, larger than that of ZnO nanoparticles (5 nm), which is ascribed to the aggregation of ZnO nanoparticles (20 nm) on the graphene oxide sheets. These results show the certain correlation among the sizes of pores, ZnO nanoparticles and ZnO aggregations, which gain insight into the controlling of pore size by choosing suitable etching agent.
机译:在片材上具有纳米级孔隙的多孔石墨烯在许多技术重要的行业中都显示出巨大的潜力。然而,包括高能技术和模板蚀刻/生长方法在内的合成多孔石墨烯的转化方法通常以高成本和低通量在基板上进行。在本文中,我们展示了使用单分散氧化锌纳米粒子通过碳热还原反应制备多孔石墨烯的通用且可扩展的合成方法。结果表明,ZnO纳米粒子首先通过静电相互作用附着在氧化石墨烯纳米片上,然后在800 A的温度下进行碳热还原反应以在片上产生孔。虽然将氧化石墨烯纳米片热还原为石墨烯,但所有副产物(一氧化碳,二氧化碳和锌)同时从最终产物中逸出。所获得的多孔石墨烯的特征表明,孔径为约11nm,大于ZnO纳米颗粒(5nm)的孔径,这归因于ZnO纳米颗粒在石墨烯氧化物片上的聚集(20nm)。这些结果表明孔尺寸,ZnO纳米颗粒和ZnO聚集体之间存在一定的相关性,这有助于通过选择合适的蚀刻剂来控制孔尺寸。

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