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具有强化还原氧化石墨烯的高性能多功能碳-碳化硅复合材料

High-Performance Multifunctional Carbon-Silicon Carbide Composites with Strengthened Reduced Graphene Oxide.

作者信息

He Xin, Feng Lei, Zhang Zhe, Hou Xiaojiang, Ye Xiaohui, Song Qiang, Yang Yanling, Suo Guoquan, Zhang Li, Fu Qian-Gang, Li Hejun

机构信息

School of Materials Science and Engineering, Shaanxi Key Laboratory of Green Preparation and Functionalization for Inorganic Materials, Shaanxi University of Science and Technology, Xi'an 710021, P.R. China.

State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi'an 710072, P.R. China.

出版信息

ACS Nano. 2021 Feb 23;15(2):2880-2892. doi: 10.1021/acsnano.0c08924. Epub 2021 Feb 10.

Abstract

Materials with low density, exceptional thermal and corrosion resistance, and ultrahigh mechanical and electromagnetic interference (EMI) shielding performance are urgently demanded for aerospace and military industries. Efficient design of materials' components and microstructures is crucial yet remains highly challenging for achieving the above requirements. Herein, a strengthened reduced graphene oxide (SrGO)-reinforced multi-interfacial carbon-silicon carbide (C-SiC) matrix (SrGO/(C-SiC)) composite is reported, which is fabricated by depositing a carbon-strengthening layer into rGO foam followed by alternate filling of pyrocarbon (PyC) and silicon carbide (SiC) a precursor infiltration pyrolysis (PIP) method. By increasing the number of alternate PIP sequences ( = 1, 3 and 12), the mechanical, electrical, and EMI shielding properties of SrGO/(C-SiC) composites are significantly increased. The optimal composite exhibits excellent conductivity of 8.52 S·cm and powerful average EMI shielding effectiveness (SE) of 70.2 dB over a broad bandwidth of 32 GHz, covering the entire X-, Ku-, K-, and Ka-bands. The excellent EMI SE benefits from the massive conduction loss in highly conductive SrGO skeletons and polarization relaxation of rich heterogeneous PyC/SiC interfaces. Our composite features low density down to 1.60 g·cm and displays robust compressive properties (up to 163.8 MPa in strength), owing to the uniformly distributed heterogeneous interfaces capable of consuming great fracture energy upon loadings. Moreover, ultrahigh thermostructural stability (up to 2100 °C in Ar) and super corrosion resistance (no strength degradation after long-term acid and alkali immersion) are also discovered. These excellent comprehensive properties, along with ease of low-cost and scalable production, could potentially promote the practical applications of the SrGO/(C-SiC) composite in the near future.

摘要

航空航天和军事工业迫切需要具有低密度、优异的耐热性和耐腐蚀性以及超高机械和电磁干扰(EMI)屏蔽性能的材料。材料成分和微观结构的有效设计对于满足上述要求至关重要,但仍极具挑战性。在此,报道了一种增强还原氧化石墨烯(SrGO)增强的多界面碳 - 碳化硅(C - SiC)基体(SrGO/(C - SiC))复合材料,它是通过在前驱体浸渍热解(PIP)方法中,在rGO泡沫中沉积碳强化层,然后交替填充热解碳(PyC)和碳化硅(SiC)来制备的。通过增加交替PIP序列的次数( = 1、3和12),SrGO/(C - SiC)复合材料的机械、电学和EMI屏蔽性能显著提高。最佳复合材料在32 GHz的宽带宽上表现出8.52 S·cm的优异导电性和70.2 dB的强大平均EMI屏蔽效能(SE),覆盖整个X、Ku、K和Ka波段。优异的EMI SE得益于高导电SrGO骨架中的大量传导损耗以及丰富的异质PyC/SiC界面的极化弛豫。我们的复合材料密度低至1.60 g·cm ,由于均匀分布的异质界面在加载时能够消耗大量断裂能,因此具有强大的压缩性能(强度高达163.8 MPa)。此外,还发现了超高的热结构稳定性(在Ar中高达2100 °C)和超强的耐腐蚀性(长期酸碱浸泡后强度无降解)。这些优异的综合性能,以及低成本和可扩展生产的便利性,可能会在不久的将来推动SrGO/(C - SiC)复合材料的实际应用。

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