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Rational construction of hierarchical hollow CuS@CoS_2 nanoboxes with heterogeneous interfaces for high-efficiency microwave absorption materials

机译:具有高效微波吸收材料的异构界面的层次空心CUS @ COS_2纳米氧化物的合理构建

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Hierarchical hollow structures have received considerable attention for light weight microwave absorption materials, however, constructing and regulating hollow structures with heterogeneous interfaces still remains a great challenge. In this work, hierarchical hollow CuS@CoS2 nanoboxes with double shells have been designed by a template-assisted process inspired by Pearson's hard and soft acid-base principle, in which the hollow nanoboxes are composed of CuS inner shell and CoS2 nanosheets outer shell. The formation of outer Co(OH)(2) nanosheets is a key factor to achieve the double shells via a "coordinating etching and precipitating" route and the etching of cubic Cu2O precursor plays an important role to stabilize the hollow nanoboxes. As absorbers, the hierarchical hollow nanoboxes exhibit high-efficiency microwave absorption attenuation because of the synergistic effects of dipolar and interfacial polarizations, multiple scatterings, hollow/core-shell structures and matched impedance. Typically, the minimum reflection loss is up to 58.6 dB at 2.5 mm when the filler loading is 20 wt% and the absorption bandwidth exceeding -10 dB is 8.2 GHz at 2.2 mm with 30 wt% filler loading. Consequently, this strategy offers a unique thought for the construction of hollow nanoboxes with double shells and the as-fabricated nanoboxes can be used as a promising candidate for microwave absorption materials with light weight and high-efficiency.
机译:分层中空结构已经接受了重量重量微波吸收材料的相当大的关注,然而,用异质接口构建和调节空心结构仍然是一个巨大的挑战。在这项工作中,采用了由Pearson的硬酸基原理的​​模板辅助工艺设计了具有双壳的等级空心CUS @ COS2纳米氧化件,其中由Pearson的硬酸基础原理启发,其中空心纳米氧氧氧氧可由Cus内壳和COS2纳米晶片组成。外部CO(OH)(2)纳米片的形成是通过“协调蚀刻和沉淀”途径实现双壳的关键因素,并且立方Cu2O前体的蚀刻起到稳定中空纳米氧氧氧氧的重要作用。作为吸收剂,等级中空纳米氧可框具有高效微波吸收衰减,因为偶极和界面偏振,多个散射,空心/芯壳结构和匹配阻抗的协同作用。通常,当填充物负载为20wt%时,最小反射损耗在2.5mm时高达58.6dB,并且超过-10dB的吸收带宽为8.2GHz,在2.2mm为2.2mm,具有30wt%的填充载荷。因此,该策略为具有双壳的空心纳米氧氧氧氧氧氧氧氧氧氧氧氧氧化物提供了独特的思路,并且可以用作微波吸收材料的有希望的较轻和高效率的候选者。

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