Liang Bingbing, Wang Shiliang, Kuang Daitao, Hou Lizhen, Yu Bowen, Lin Liangwu, Deng Lianwen, Huang Han, He Jun
School of Physics and Electronics, Central South University, Changsha, 410083, People's Republic of China.
Nanotechnology. 2018 Feb 23;29(8):085604. doi: 10.1088/1361-6528/aaa52f.
FeCo-C core-shell nanoparticles (NPs) with diameters of 10-50 nm have been fabricated on a large scale by one-step metal-organic chemical vapor deposition using the mixture of cobalt acetylacetonate and iron acetylacetonate as the precursor. The Fe/Co molar ratio of the alloy nanocores and graphitization degree of C shells, and thus the magnetic and electric properties of the core-shell NPs, can be tuned by the deposition temperature ranging from 700 °C to 900 °C. Comparative tests reveal that a relatively high Fe/Co molar ratio and low graphitization degree benefit the microwave absorption (MA) performance of the core-shell NPs. The composite with 20 wt% core-shell NP obtained at 800 °C and 80 wt% paraffin exhibits an optimal reflection loss [Formula: see text] of -60.4 dB at 7.5 GHz with a thickness of 3.3 mm, and an effective absorption bandwidth (frequency range for RL ≤10 dB) of 9.2 GHz (8.8-18.0 GHz) under an absorber thickness of 2.5 mm. Our study provides a facile route for the fabrication of alloy-C core-shell nanostructures with high MA performance.
采用乙酰丙酮钴和乙酰丙酮铁的混合物作为前驱体,通过一步金属有机化学气相沉积法大规模制备了直径为10 - 50 nm的FeCo-C核壳纳米颗粒(NPs)。合金纳米核的Fe/Co摩尔比和C壳的石墨化程度,进而核壳NPs的磁性能和电性能,可以通过700℃至900℃的沉积温度进行调节。对比测试表明,相对较高的Fe/Co摩尔比和较低的石墨化程度有利于核壳NPs的微波吸收(MA)性能。在800℃下获得的20 wt%核壳NP与80 wt%石蜡的复合材料,在7.5 GHz频率下,厚度为3.3 mm时,表现出最佳反射损耗[公式:见原文]为-60.4 dB,在吸收体厚度为2.5 mm时,有效吸收带宽(RL≤10 dB的频率范围)为9.2 GHz(8.8 - 18.0 GHz)。我们的研究为制备具有高MA性能的合金-C核壳纳米结构提供了一条简便的途径。