High performance inorganic fullerene cage WS2 enhanced cement

材料科学 抗弯强度 胶凝的 复合材料 硅酸盐水泥 X射线光电子能谱 纳米颗粒 二硫化钨 水泥 化学工程 纳米技术 工程类
作者
Binling Chen,Hiu Shan Rachel Tsui,Barrie Dams,H. Taha,Yanqiu Zhu,Richard Ball
出处
期刊:Construction and Building Materials [Elsevier BV]
卷期号:404: 133305-133305
标识
DOI:10.1016/j.conbuildmat.2023.133305
摘要

An original cement based material enhanced with inorganic fullerene tungsten disulfide (IF-WS2) nanoparticles has been engineered with superb shock absorbing properties. Physical properties were attributed to the IF-WS2 nano-hollow multiple layered onion-like structure. The effect of IF-WS2 concentration at 0.1 wt%, 1 wt% and 5 wt% on the hydration kinetics of ordinary Portland cement (CEM1), electrical impedance, thermal stability, rheology and strength development was thoroughly evaluated. X-ray photoelectron spectroscopy (XPS), transmission electron microscopy (TEM) and X-ray diffraction (XRD) studies confirmed the formation of the new phase, calcium tungstate (CaWO4), at the nano-particle/cement matrix interface during early hydration. 1 wt% IF-WS2 additions enhanced the impact energy of CEM1 by 89% compared to the control. An IF-WS2 cementitious mixture was developed for 3D printing based on the 1% WS2-CEM composition. The mix exhibited excellent workability and buildability enabling the creation of a layer-by-layer printed component. Intimate interlayer adhesion minimized the presence of voids leading to a high flexural strength of 6.7 MPa, which equated to an over 86% improvement compared to plain CEM1 printed components. This study showcases IF-WS2 nanoparticles as a new ground-breaking additive enabling the production of high-performance cementitious construction materials, for use under extreme environments demanding high strength and impact resistance.
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