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碳纳米线圈辅助制备可调孔石墨烯气凝胶用于轻质宽带微波吸收、隔热和防冻装置

Carbon Nanocoils-Assisted Formation of Tunable Pore Graphene Aerogels for Lightweight Broadband Microwave Absorption, Thermal Insulation, and Antifreeze Devices.

作者信息

Guo Yuan, Duan Yuping, Gu Shude, Liu Xiaoji, Fan Zeng, Pang Huifang, Pan Lujun

机构信息

Key Laboratory of Solidification Control and Digital Preparation Technology, School of Materials Science and Engineering, Dalian University of Technology, Dalian, Liaoning, 116085, P. R. China.

School of Physics, Dalian University of Technology, Dalian, Liaoning, 116024, P. R. China.

出版信息

Small. 2025 Mar;21(10):e2412270. doi: 10.1002/smll.202412270. Epub 2025 Feb 9.

DOI:10.1002/smll.202412270
PMID:39924820
Abstract

The rational design of the aerogel pore structure facilitates the maximum excitation of the materials physicochemical properties, which enables the modulation of their electromagnetic performance. However, the controllable adjustment of the aerogel pore structure remains a significant challenge. Here, the freeze-thawing process and thermal annealing treatment are introduced to prepare reduced graphene oxide (rGO)/iron (Fe)/carbon nanocoil (CNC) aerogels. The composite aerogels with tunable pore structure are obtained by adjusting the content of CNC. Both experiments and simulations confirm that the pore structure with the addition of CNC presents a continuous 3D conductive network, which improves the conductivity loss and polarization loss. Meanwhile, the amorphous carbon structure within the CNC causes structural defects, which further enhance the polarization loss. Therefore, the rGO/Fe/CNC aerogel with optimized pore structure has lightweight and efficient electromagnetic wave absorption. At an ultra-low filling ratio of 0.8 wt%, the effective absorption bandwidth reaches 7.9 GHz and the optimal reflection loss is -43.5 dB. In addition, due to the 3D continuous network interwoven of aerogels and the temperature stability of carbon nanomaterials, composite aerogels have excellent thermal insulation, antifreeze performance, and hydrophobicity. This multifunctional absorber has great potential for application in complex and changing electromagnetic environments.

摘要

气凝胶孔结构的合理设计有助于最大限度地激发材料的物理化学性质,从而实现其电磁性能的调控。然而,气凝胶孔结构的可控调节仍然是一个重大挑战。在此,引入冻融过程和热退火处理来制备还原氧化石墨烯(rGO)/铁(Fe)/碳纳米线圈(CNC)气凝胶。通过调节CNC的含量获得了具有可调孔结构的复合气凝胶。实验和模拟均证实,添加CNC后的孔结构呈现出连续的三维导电网络,这改善了电导率损耗和极化损耗。同时,CNC内部的无定形碳结构导致结构缺陷,进一步增强了极化损耗。因此,具有优化孔结构的rGO/Fe/CNC气凝胶具有轻质高效的电磁波吸收性能。在0.8 wt%的超低填充率下,有效吸收带宽达到7.9 GHz,最佳反射损耗为-43.5 dB。此外,由于气凝胶的三维连续网络交织以及碳纳米材料的温度稳定性,复合气凝胶具有优异的隔热、防冻性能和疏水性。这种多功能吸收体在复杂多变的电磁环境中具有巨大的应用潜力。

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