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首页> 外文期刊>Chemical engineering journal >Electromagnetic wave absorption performance and electrochemical properties of multifunctional materials: Air@Co@Co3Sn2@SnO(2 )hollow sphere/reduced graphene oxide composites
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Electromagnetic wave absorption performance and electrochemical properties of multifunctional materials: Air@Co@Co3Sn2@SnO(2 )hollow sphere/reduced graphene oxide composites

机译:多功能材料的电磁波吸收性能与电化学性能:Air@Co@Co3Sn2@SnO(2)空心球/还原氧化石墨烯复合材料

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Herein, a facile and controllable structural fabrication strategy is presented for the fabrication of multinanoshell Air@metal@intermetallic@oxide-like Air@Co@Co3Sn2@SnO2 hollow spheres with a multinanoshell (HSMNS) structure using a hollow Co sphere template and a simple hydrothermal method. Composites of Air@Co@Co3Sn2@SnO2 HSMNS/reduced graphene oxide (RGO) were obtained, and the electromagnetic wave (EW) absorbing properties of the composites as microwave-absorbing materials as well as the electrochemical properties as the anode electrode materials of lithium-ion batteries (LIBs) were investigated. The obtained results demonstrate that the Air@Co@Co3Sn2@SnO2/RGO composite exhibited remarkable EW absorbing properties with an extremely high reflection loss of -55.49 dB and an ultrabroad effective absorption bandwidth of 5.43 GHz when loaded at only 5 wt in a paraffin coating owing to the strengthened synergistic effects of the magnetic metal, resistive intermetallic, and dielectric metal oxide shells. In addition, the composite showed a superior performance with long-term cycling stability (960 mAh g-1 after 180 cycles at a current density of 0.1 A g-1) when used as the anode of an LIB. These results indicate that the composite of Air@Co@Co3Sn2@SnO2 HSMNS/RGO, which exhibits light-weight, highly efficient absorbing properties, and long-term cycling stability as the anode electrode of LIBs, has a promising future in EW absorption and electrochemical fields. We hope that this strategy will provide a new method for the construction of complex multinanoshell hollow structural materials in other research fields.
机译:在此,提出了一种简单可控的结构制备策略,用于利用空心Co球模板和简单的水热法制备具有多纳米壳(HSMNS)结构的多纳米壳Air@metal@intermetallic@oxide状Air@Co@Co3Sn2@SnO2空心球。制备了Air@Co@Co3Sn2@SnO2 HSMNS/还原氧化石墨烯(RGO)复合材料,研究了复合材料作为微波吸收材料的电磁波(EW)吸收性能以及作为锂离子电池(LIB)负极材料的电化学性能。结果表明,由于磁性金属、电阻金属间化合物和介电金属氧化物壳层的协同作用增强,Air@Co@Co3Sn2@SnO2/RGO复合材料在石蜡涂层中仅负载5 wt%时,表现出优异的电子战吸收性能,反射损耗极高,为-55.49 dB,有效吸收带宽为5.43 GHz。此外,当用作锂离子电池的阳极时,该复合材料表现出优异的性能和长期循环稳定性(在0.1 A g-1的电流密度下循环180次后为960 mAh g-1)。这些结果表明,Air@Co@Co3Sn2@SnO2 HSMNS/RGO复合材料作为锂离子电池的阳极电极具有重量轻、吸波性能高、循环稳定性好等特点,在电子战吸收和电化学领域具有广阔的应用前景。希望该策略能为其他研究领域构建复杂的多纳米壳中空结构材料提供新的方法。

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