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由菱角壳制备的具有优异微波吸收性能的三维层状多孔碳骨架。

3D lamellar skeletal network of porous carbon derived from hull of water chestnut with excellent microwave absorption properties.

机构信息

School of Material Science and Engineering, Anhui University of Science and Technology, Huainan, Anhui 232001, China.

School of Material Science and Engineering, Anhui University of Science and Technology, Huainan, Anhui 232001, China.

出版信息

J Colloid Interface Sci. 2023 Jul;641:449-458. doi: 10.1016/j.jcis.2023.03.062. Epub 2023 Mar 15.

Abstract

Biomass derived carbon has attracted extensive attention in the field of microwave absorption because of its sustainability and porous structure beneficial to microwave attenuation. In this study, 3D lamellar skeletal network porous carbon was successfully obtained from hull of water chestnut using biomass waste as raw material by controlling the ratio of KOH and precursors in a one-step carbonization process. The optimization of biomass carbon morphology was achieved and its microwave absorption properties were investigated. At the temperature of 600 °C, when the ratio of hull of water chestnut to KOH is 1:1, the porous carbon material with filling ratio of 35% can reach the effective absorption bandwidth (RL < -10 dB) of 6.0 GHz (12-18 GHz) at the matching thickness of 1.90 mm, covering the whole Ku band. When the thickness is 2.97 mm, the optimal reflection loss reaches -60.76 dB. The surface defects, interface polarization and dipole polarization of 3D porous skeleton network structure derived from hull of water chestnut contribute to the excellent reflection loss and bandwidth of porous carbon materials. The porous carbon with low density, low cost and simple preparation method has broad application prospects in the preparation of biomass-derived microwave absorbers.

摘要

生物质衍生碳因其可持续性和有利于微波衰减的多孔结构,在微波吸收领域引起了广泛关注。本研究以菱角壳为生物质废弃物,通过控制 KOH 和前体的比例,在一步碳化过程中成功制备了 3D 层状骨架网络多孔碳。优化了生物质碳的形态,并研究了其微波吸收性能。在 600°C 时,当菱角壳与 KOH 的比例为 1:1 时,填充率为 35%的多孔碳材料在匹配厚度为 1.90mm 时可达到 6.0GHz(12-18GHz)的有效吸收带宽(RL<-10dB),覆盖整个 Ku 波段。当厚度为 2.97mm 时,最佳反射损耗达到-60.76dB。菱角壳衍生的 3D 多孔骨架网络结构的表面缺陷、界面极化和偶极子极化有助于多孔碳材料具有优异的反射损耗和带宽。这种具有低密度、低成本和简单制备方法的多孔碳在制备生物质衍生微波吸收剂方面具有广阔的应用前景。

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