Xiang Bingzhi, Cheng Ruifeng, Zhu Jielu, Zhou Yong, Peng Xiaoying, Song Junwei, Wu Junhong
School of Urban Construction, Jiangxi University of Technology, Nanchang, 330098, China.
Sci Rep. 2023 Sep 26;13(1):16081. doi: 10.1038/s41598-023-43133-7.
Hydrophobic carbon nanotubes are hardly to disperse in water and prone to agglomerate when poured with Copper Tailing-Based Cementitious Material (CTCM). Multi-walled carbon nanotubes (MWCNTs) + Arabic Gum (GA) dispersions were prepared by a novel method of synergistic optimization of concentration, controlling low-frequency ultrasonic time and setting the ambient temperature with non-toxic anionic surfactant GA as surfactant. The results of UV-Vis spectroscopy showed that the high stability MWCNTs + GA dispersion with low aggregation area (< 1.2%) and low aggregation beam size (< 219 nm) have been prepared by using 1.7 mmol/l GA. The effects of highly stable MWCNTs dispersion on the mechanical properties, microstructure and durability of CTCM were studied. The 28 days compressive strength increased by 21.5%, and the flexural strength increased by 20.5%, almost reaching the mechanical level of the control group. The results of SEM, XRD and EDS showed that GA significantly enhanced the dispersion of MWCNT in aqueous solution at a suitable concentration (mass ratio of GA:CNTs = 1:1). The microstructure of the prepared CTCM by high stability MWCNTs dispersion was optimized obviously, and the mechanical properties and durability were improved significantly. This method solves the dual problem of MWCNTs not being fully dispersed in aqueous solution and being easily re-agglomerated in cementitious materials, as well as finding a breakthrough for the low cost and industrialization of tailings cement-based composite cementitious materials.
疏水性碳纳米管在水中很难分散,当与基于铜尾矿的胶凝材料(CTCM)混合时容易团聚。采用一种新的协同优化浓度、控制低频超声时间和设定环境温度的方法,以无毒阴离子表面活性剂阿拉伯胶(GA)作为表面活性剂制备了多壁碳纳米管(MWCNTs)+阿拉伯胶(GA)分散体。紫外可见光谱结果表明,使用1.7 mmol/l GA制备了具有低聚集面积(<1.2%)和低聚集束尺寸(<219 nm)的高稳定性MWCNTs+GA分散体。研究了高稳定性MWCNTs分散体对CTCM力学性能、微观结构和耐久性的影响。28天抗压强度提高了21.5%,抗折强度提高了20.5%,几乎达到对照组的力学水平。扫描电子显微镜(SEM)、X射线衍射(XRD)和能谱分析(EDS)结果表明,在合适的浓度(GA与CNTs的质量比为1:1)下,GA显著增强了MWCNT在水溶液中的分散性。高稳定性MWCNTs分散体制备的CTCM微观结构得到明显优化,力学性能和耐久性显著提高。该方法解决了MWCNTs在水溶液中不能充分分散以及在胶凝材料中容易重新团聚的双重问题,同时为尾矿水泥基复合胶凝材料的低成本和工业化找到了突破口。