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A sustainable route from biomass cotton to construct lightweight and high-performance microwave absorber

机译:从生物量棉建造轻质和高性能微波吸收器的可持续路线

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Nowadays, carbon materials derived from natural biomaterials have been drawn considerable attention because the biomaterials are vastly available, accessible and renewable. Hereinto, it is fascinating that employing cotton as carbonaceous precursors to fabricate novel sustainable lightweight microwave absorber due to its unique hierarchical macro-/microporous architecture. In current study, we adopt a sustainable route from biomass cotton to construct cotton/zeolitic imidazolate framework (ZIF-67) and subsequent sintering to fabricate carbon-cotton/Co@nanoporous carbon (NPC) products. The as-prepared composites showed definitely superior microwave absorption performance than the pristine carbon-cotton and Co@NPC. It is confirmed that a better impedance matching is the key factor to realize excellent absorption. When the sample filling ratio is as low as 25 wt% in paraffin matrix, the maximum reflection loss can achieve -60.0 dB at 8.48 GHz. Furthermore, via adjusting the thickness to only 1.65 mm, the optimal reflection loss can obtain -51.2 dB at 13.92 GHz with a broad bandwidth of 4.4 GHz. In addition, the annealing temperature for the composites was also investigated, which had significant influence on tuning absorption properties. Prospectively, our present work may provide a new guideline to design carbon composites from earth-abundant recyclable biomass materials as sustainable, lightweight and high-performance absorber.
机译:如今,源自天然生物材料的碳材料已被绘制着显着,因为生物材料广泛可用,可访问和可再生。介绍,它令人着迷于使用棉花作为碳质前体制造新的可持续轻量级微波吸收器,由于其独特的分层宏观/微孔结构。在目前的研究中,我们采用了从生物质棉的可持续路线构建棉/沸石咪唑酯骨架(ZIF-67),随后烧结以制造碳棉/共同纳米孔碳(NPC)产物。制备的复合材料显示出比原始碳棉和CO @ NPC的卓越的微波吸收性能。证实,更好的阻抗匹配是实现优异吸收的关键因素。当样品填充比在石蜡基质中低至25wt%时,最大反射损耗可以在8.48GHz下达到-60.0dB。此外,通过将厚度调节至仅1.65mm,最佳反射损耗可以在13.92GHz处获得-51.2 dB,具有4.4 GHz的宽带。此外,还研究了复合材料的退火温度,这对调谐吸收性能具有显着影响。我们目前的工作可以提供新的准则,可以从地球丰富可再循环的生物质材料设计为可持续,轻质和高性能吸收器的碳复合材料。

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