Fabrication of NiCo 2 -Anchored Graphene Nanosheets by Liquid-Phase Exfoliation for Excellent Microwave Absorbers
Ruilong Yang, Bochong Wang, Jianyong Xiang, Congpu Mu, Can Zhang, Fusheng Wen, Cong Wang, Can Su, Zhongyuan Liu
Abstract
Ruilong Yang, Bochong Wang, Jianyong Xiang, Congpu Mu, Can Zhang, Fusheng Wen, Cong Wang, Can Su, Zhongyuan Liu
Abstract
Graphene nanosheets (GNSs) were prepared by an efficient liquid-phase exfoliation method, and then the NiCo 2 /GNS nanohybrids were fabricated using the single-mode microwave-assisted hydrothermal technique. The NiCo 2 /GNS composites with different GNS proportions were investigated as microwave absorbers. Morphology investigation suggested that NiCo 2 nanocrystals were uniformly anchored on the GNS without aggregation. The electromagnetic parameters of NiCo 2 /GNS nanohybrids could be artificially adjusted by changing the GNS proportion, which led to an exceptional microwave-absorbing performance. A reflection loss (RL) exceeding −20 dB was obtained in the frequency range of 5.3–16.4 GHz for the absorber thicknesses of 1.2–3.2 mm, while an optimal RL of −30 dB was achieved at 11.7 GHz for a thickness of 1.6 mm. The enhanced microwave-absorbing performance indicated that the NiCo 2 /10 wt % GNS composite has great potential for use as an excellent microwave absorber.
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Graphene nanosheets (GNSs) were prepared by an efficient liquid-phase exfoliation method, and then the NiCo 2 /GNS nanohybrids were fabricated using the single-mode microwave-assisted hydrothermal technique. The NiCo 2 /GNS composites with different GNS proportions were investigated as microwave absorbers. Morphology investigation suggested that NiCo 2 nanocrystals were uniformly anchored on the GNS without aggregation. The electromagnetic parameters of NiCo 2 /GNS nanohybrids could be artificially adjusted by changing the GNS proportion, which led to an exceptional microwave-absorbing performance. A reflection loss (RL) exceeding −20 dB was obtained in the frequency range of 5.3–16.4 GHz for the absorber thicknesses of 1.2–3.2 mm, while an optimal RL of −30 dB was achieved at 11.7 GHz for a thickness of 1.6 mm. The enhanced microwave-absorbing performance indicated that the NiCo 2 /10 wt % GNS composite has great potential for use as an excellent microwave absorber.
Key concepts: Materials science, Exfoliation joint, Fabrication, Graphene, Microwave, Nanotechnology, Optoelectronics, Phase (matter)