Chen Sai, Cheng Yuchuan, Zhao Zihui, Zhang Ke, Hao Tingting, Sui Yi, Wang Wen, Zhao Jiupeng, Li Yao
MIIT Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage, School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin, Heilongjiang 150001, People's Republic of China.
Zhejiang Key Laboratory of Additive Manufacturing Materials, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo, Zhejiang 315000, People's Republic of China.
ACS Appl Mater Interfaces. 2023 Jul 26;15(29):35741-35749. doi: 10.1021/acsami.3c07133. Epub 2023 Jul 14.
The incorporation of nanocarbon-based materials into electrorheological fluids has been shown to be an effective means of improving the electrorheological (ER) response. However, the mechanism of the sp/sp-hybridized carbon structure and high ER response is still under investigation. Herein, barium titanate@nanocarbon shell (BTO@NCs) composites are proposed and prepared by introducing carbonized polydopamine (C-PDA) into a shell. When the polymerization time of dopamine is tuned, the shell thickness, surface polar functional groups, and sp/sp-hybridized carbon can be effectively controlled. The maximum yield stress of the BTO@NCs-24 h ER fluid reaches 2.5 kPa under an electric field of 4 kV mm, which is attributed to the increased content of sp C-OH and oxygenous functional groups within the shell, resulting in a rapidly achievable polarization. Furthermore, the SiO@NCs and TiO@NCs ER fluids are also prepared with enhanced ER behavior in these phenomena, confirming an approach to high-performance ER fluids based on nanocarbon composites.
将纳米碳基材料加入电流变流体已被证明是改善电流变(ER)响应的有效方法。然而,sp/sp杂化碳结构与高电流变响应的机制仍在研究中。在此,通过将碳化聚多巴胺(C-PDA)引入壳层来制备钛酸钡@纳米碳壳(BTO@NCs)复合材料。调节多巴胺的聚合时间时,壳层厚度、表面极性官能团和sp/sp杂化碳可得到有效控制。在4 kV/mm的电场下,BTO@NCs-24 h电流变流体的最大屈服应力达到2.5 kPa,这归因于壳层内sp C-OH和含氧官能团含量的增加,从而实现快速极化。此外,还制备了SiO@NCs和TiO@NCs电流变流体,在这些现象中其电流变行为得到增强,证实了一种基于纳米碳复合材料的高性能电流变流体的制备方法。