电场作用下硅酸盐水泥水合物固化的压电性

Y. L. Yaphary, Shuhuan Hu, Denvid Lau, Raymond H. W. Lam
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引用次数: 9

摘要

从纳米尺度上通过改变材料的性能来改善建筑材料的功能是现代民用建筑和基础设施的主要关注点。硅酸盐水泥水合物是一种应用广泛的建筑材料,其新用途引起了当前研究人员不断增长的兴趣。尽管PC水合物在机械上非常坚固,具有大规模应用的可行性,但其压电性相对较低,这意味着结构的机械特性,如振动和裂纹位置,无法通过相关的压电信号轻松检测到。有限的压电性和在整个土木结构上嵌入传感器网络的困难给功能性建筑材料的应用带来了巨大的技术障碍。在这里,我们报道了一种新的技术,通过在电场的影响下,在水化PC的整个固化过程中应用极化过程来改善PC水合物的压电性。该技术的基础是调节分子的位移和取向,在纳米尺度下由不同的带电元素组成的PC水合物之间的相互作用。原子力显微镜研究结果表明,极化后的PC水合物在纳米尺度上具有相对更整齐的形貌取向。在电场作用下固化的PC水合物在机械载荷作用下对产生的电势具有更好的敏感性。研究结果表明,极化PC水合物具有更好的压电性能,具有潜在的民用应用前景,如结构健康监测和机械能回收。
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Piezoelectricity of Portland cement hydrates cured under the influence of electric field
Improvements on functions of construction materials through modifications of material properties from the nano-scale are major concerns in modern civil buildings and infrastructures nowadays. Portland cement (PC) hydrates are the massively applied construction materials, whose new usages have caught the continuously growing interests of current researchers. Though mechanically very robust with feasibility for massive application, PC hydrates have relatively lower piezoelectricity, meaning that constructional mechanical characteristics, such as vibrations and crack locations, cannot be easily detected by the associated piezoelectric signals. The limited piezoelectricity and the difficulty of embedding sensor networks over the entire civil structures induce great technical hurdles for the functional building material applications. Here, we report a novel technique for improving the piezoelectricity of PC hydrates, by applying the polarization process throughout curing of hydrated PC under the influence of an electric field. This technique is based on regulating displacements and reorientations of molecules under the nano-scale interactions between different charged elements consisted in PC hydrates. Results from AFM investigation show the polarized PC hydrates have the relatively more aligned morphology orientation at nano-scale. PC hydrates cured under an electric field has shown with an improved sensitivity of the generated electrical potential under mechanical loading. Our results indicate that the polarized PC hydrates shows improved piezoelectric properties, enabling potential civil applications of the polarized PC hydrates such as structural health monitoring and mechanical energy recycling.
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