MIIT Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage, School of Chemistry and Chemical Engineering, Harbin Institute of Technology , Harbin 150001, China.
ACS Appl Mater Interfaces. 2017 Nov 22;9(46):40690-40696. doi: 10.1021/acsami.7b13063. Epub 2017 Nov 8.
Heterostructured dielectric-dielectric nanowires of SiC core and carbon shell (SiC@C) with high-performance electromagnetic wave absorption were synthesized by combining an interfacial in situ polymer encapsulation and carbonization process. This approach overcomes the shortcomings of previous reported methods to prepare carbon shell that both carbon shell and free carbon particles are formed simultaneously. In our developed approach, the core of SiC nanowires are first positively charged. Then the negative resorcinol-formaldehyde polymers as the carbon source are anchored on SiC nanowires under the attraction of electrostatic force, which well suppresses the nucleation of free carbon particles. The thickness of the carbon shell could be modulated from 4 to 20 nm by simply adjusting the moral ratio of resorcinol to SiC nanowires. The resulting SiC@C core-shell nanostructures without free carbon particles offer synergism among the SiC nanowires and the carbon shells, generating multiple dipolar polarization, surfaced polarization, and associated relaxations, which endow SiC@C hybrid nanowires with a minimum reflection loss (R) value of -50 dB at the frequency of 12 GHz and an effective absorption bandwidth of 8 GHz with R value under -10 dB at the optimized state. Our results demonstrate that SiC@C hybrid nanowires are promising candidates for electromagnetic wave absorption applications.
通过结合界面原位聚合物封装和碳化工艺,成功合成了具有高性能电磁波吸收能力的 SiC 核-碳壳(SiC@C)异质结构介电-介电纳米线。这种方法克服了以前报道的制备碳壳方法的缺点,即同时形成碳壳和游离碳颗粒。在我们开发的方法中,首先使 SiC 纳米线带正电。然后,带负电的间苯二酚-甲醛聚合物作为碳源,在静电力的吸引下锚定在 SiC 纳米线上,从而很好地抑制了游离碳颗粒的成核。通过简单调整间苯二酚与 SiC 纳米线的摩尔比,可将碳壳的厚度从 4nm 调节至 20nm。没有游离碳颗粒的 SiC@C 核壳纳米结构协同 SiC 纳米线和碳壳,产生了多重偶极极化、表面极化和相关弛豫,使 SiC@C 杂化纳米线在 12GHz 频率下的最小反射损耗(R)值达到-50dB,在优化状态下 R 值低于-10dB 的有效吸收带宽为 8GHz。我们的结果表明,SiC@C 杂化纳米线是电磁波吸收应用的有前途的候选材料。