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Jia Zhao, Haoran Lai, and Ming Li, Anchoring 1T-MoS2 petals on N-doped reduced graphene oxide for exceptional electromagnetic wave absorption, Int. J. Miner. Metall. Mater.,(2024). https://dx.doi.org/10.1007/s12613-024-2998-1
Jia Zhao, Haoran Lai, and Ming Li, Anchoring 1T-MoS2 petals on N-doped reduced graphene oxide for exceptional electromagnetic wave absorption, Int. J. Miner. Metall. Mater.,(2024). https://dx.doi.org/10.1007/s12613-024-2998-1
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具备优异吸波性能的1T-MoS2@N-rGO 纳米复合材料

摘要: 作为当前电磁防护领域的热点,如何有效构建宽频强吸收的电磁波吸收材料是解决电磁污染问题的关键。本工作通过水热法将高纯1T相花状MoS2均匀地镶嵌在氮掺杂石墨烯(N-rGO)的表面制备1T-MoS2@N-rGO纳米复合材料。电磁波会在由二维N-rGO和具有大量薄纳米片的1T-MoS2微球构成的独特多维结构中发生多次反射和散射,此外1T-MoS2@N-rGO构成的导电网络中的大量电子迁移会引起电磁波显著电导损耗,以及复合材料中产生的丰富的电磁波极化损耗(偶极子极化损耗和界面极化损耗)。以上这些都赋予了1T-MoS2@N-rGO纳米复合材料优异的电磁波吸收性能。研究发现,当吸波材料的匹配厚度仅为1.84 mm时,1T-MoS2@N-rGO的有效吸收频宽可以达到6.48 GHz。此外,1T-MoS2@N-rGO纳米复合材料的雷达散射截面衰减值在0o处达到35.42 dB·m2,这也进一步说明了我们制备的1T-MoS2@N-rGO纳米复合材料在实际应用中具有巨大潜力。

 

Anchoring 1T-MoS2 petals on N-doped reduced graphene oxide for exceptional electromagnetic wave absorption

Abstract: The effective construction of electromagnetic (EM) wave absorption materials with thin matching thickness, broad bandwidth, and remarkable absorption is a great solution to EM pollution, which is a hot topic in current environmental governance. In this study, N-doped reduced graphene oxide (N-rGO) was first prepared using a facile hydrothermal method. Then, high-purity 1T-MoS2 petals were homogeneously anchored to the wrinkled surface of N-rGO to fabricate 1T-MoS2@N-rGO nanocomposites. The numerous electric dipoles and profuse heterointerfaces in 1T-MoS2@N-rGO would induced the multiple reflection and scattering of EM waves in a distinctive multidimensional structure formed by two-dimensional N-rGO and 1T-MoS2 microspheres with plentiful thin nanosheets, remarkable conduction loss derived from the migration of massive electrons in a well-constructed conductive network formed by 1T-MoS2@N-rGO, and abundant polarization loss (including dipolar polarization loss and interfacial polarization loss). All of these gave the 1T-MoS2@N-rGO nanocomposites superior EM wave absorption performances. The effective absorption bandwidth of 1T-MoS2@N-rGO reached 6.48 GHz with a relatively thin matching thickness of 1.84 mm, and a minimum reflection loss of −52.24 dB was achieved at 3.84 mm. Additionally, the radar scattering cross-section reduction value of 1T-MoS2@N-rGO was up to 35.42 dB·m2 at 0°, which further verified the huge potential of our fabricated 1T-MoS2@N-rGO nanocomposites in practical applications.

 

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