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Ferromagnetic hierarchical carbon nanofiber bundles derived from natural collagen fibers: truly lightweight and high-performance microwave absorption materials

机译:源自天然胶原纤维的铁磁分层碳纳米纤维束:真正轻巧和高性能的微波吸收材料

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High-performance microwave absorption materials with a broad bandwidth and strong intensity have significant applications in both civil and military areas. To obtain the desired materials, the current strategy mainly relies on increasing the thickness of the materials to prolong the transmission routes of microwaves so as to tune the frequency and intensity of absorbed microwave. Unfortunately, these approaches inevitably lead to the increase of mass weight of microwave absorption materials, and the microwave absorbing band may go beyond the targeted bandwidth due to the wave shift caused by the change of the absorber thickness. Herein, a biotemplated synthesis method is developed to fabricate 3D ferromagnetic hierarchical carbon nanofiber bundles (FHCNBs) using natural collagen fibers as the biotemplate, in which ferromagnetic nanoaprticles (NPs) are embedded on the HCNBs with high dispersity. For the as-prepared FHCNBs, the hierarchically nanofibrous structure induced-multiple reflection and scattering are able to enlarge the transmission routes of microwaves, which dramatically improves the microwave attenuation capacity of the ferromagnetic NPs exposed on the FHCNB surface. In this way, a low loading amount of active components (as low as 38.1%) is required for achieving excellent microwave absorption performances (e.g. -36 to -57 dB of reflection loss, 8.6-14 GHz with reflection loss exceeding -10 dB). Importantly, the bandwidth and absorption intensity of microwaves can be effectively tuned by changing the ferromagnetic species (Fe3O4, Fe3N, alpha-Fe, FeTiO3/Fe3O4 and ZrO2/Fe3O4) embedded on FHCNBs, which therefore provides a new pathway for the rational realization of truly lightweight and high-performance microwave absorption materials.
机译:具有宽带宽和高强度的高性能微波吸收材料在民用和军事领域都有重要的应用。为了获得所需的材料,当前的策略主要依赖于增加材料的厚度以延长微波的传输路径,从而调节吸收的微波的频率和强度。不幸的是,这些方法不可避免地导致微波吸收材料的质量增加,并且由于吸收体厚度的变化引起的波移,微波吸收带可能会超出目标带宽。在本文中,开发了一种生物模板合成方法,以使用天然胶原纤维作为生物模板来制造3D铁磁分层碳纳米纤维束(FHCNB),其中铁磁纳米附件(NP)以高分散性嵌入到HCNB上。对于制备的FHCNB,纳米级纤维结构诱导的多次反射和散射能够扩大微波的传输路径,从而显着提高暴露在FHCNB表面的铁磁NP的微波衰减能力。这样,需要低含量的活性成分(低至38.1%)才能实现出色的微波吸收性能(例如,反射损耗为-36至-57 dB,反射损耗超过-10 dB时为8.6-14 GHz) 。重要的是,可以通过改变嵌入在FHCNBs上的铁磁物质(Fe3O4,Fe3N,α-Fe,FeTiO3 / Fe3O4和ZrO2 / Fe3O4)有效地调节微波的带宽和吸收强度,从而为合理实现FHCNB提供了新途径。真正的轻巧和高性能的微波吸收材料。

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