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首页> 外文期刊>Microporous and mesoporous materials: The offical journal of the International Zeolite Association >Hierarchical carbonaceous composites with dispersed Co species prepared using the inherent nanostructural platform of biomass for enhanced microwave absorption
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Hierarchical carbonaceous composites with dispersed Co species prepared using the inherent nanostructural platform of biomass for enhanced microwave absorption

机译:具有使用纳米结构平台制备的分散CO物种的分层碳质复合材料,用于增强微波吸收

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摘要

Task-specific carbonaceous composites which can inherently inherit the nanostructures of biomass precursors have aroused great attention due to the characteristics of unique macro-/microporous structures, vastly available and renewability. Herein, aiming for efficient microwave absorption, hierarchical porous C/Co composites were prepared by simple dipping and carbonization process using agarics as hierarchical framework platform for magnetic Co species. The role of Co nanoparticles, Co loading amounts and carbonization temperature were systematically investigated by establishing the relationship between structural characteristics and microwave absorption performance. The prepared samples displayed enhanced microwave absorption performance than the pure carbon derived from agarics; it could mainly attribute to the synergistic effect between graphite carbon and Co nanoparticles. When the filling rate was 30%, the HPC/Co-800 showed the best EM wave absorption performance. The minimum RL was -52.62 dB at 8.56 GHz in 2.8 mm. The widest absorption bandwidth reached 5.44 GHz when the RL was -49.63 dB at only 1.9 mm. This work may pave a new avenue to develop sustainable high effective absorber by recyclable biomass materials.
机译:特定的任务含碳复合材料固有地继承生物质前体的纳米结构,由于独特的宏观/微孔结构的特点,巨大的宏观/微孔结构的特点,非常可观和可再生性。这里,旨在高效的微波吸收,通过使用琼脂糖为磁共族的分层框架平台,通过简单的浸渍和碳化过程来制备等级多孔C / CO复合材料。通过建立结构特性和微波吸收性能之间的关系,系统地研究了CO纳米颗粒,CO加载量和碳化温度的作用。制备的样品显示出比琼脂酸衍生的纯碳增强的微波吸收性能;它可能主要归因于石墨碳和CO纳米颗粒之间的协同效应。当填充率为30%时,HPC / CO-800显示出最佳的EM波吸收性能。最小RL为-52.62 dB,为8.56 GHz,2.8毫米。当RL仅为1.9毫米时,最宽的吸收带宽达到5.44GHz。这项工作可以通过可回收的生物质材料铺平新的途径来开发可持续的高效吸收剂。

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