Dalla Panagiota T, Tragazikis Ilias K, Trakakis George, Galiotis Costas, Dassios Konstantinos G, Matikas Theodore E
Department of Materials Science and Engineering, University of Ioannina, 45110 Ioannina, Greece.
Institute of Chemical Engineering Sciences, Foundation of Research and Technology-Hellas, (FORTH/ICE-HT), Stadiou Street, Platani, 26504 Patras, Greece.
Sensors (Basel). 2021 Jan 30;21(3):933. doi: 10.3390/s21030933.
Recent findings have brought forward the potential of carbon nano-species, especially nanotubes and graphene, to impart exceptional multifunctional potential to cement, offering simultaneous enhancement of mechanical, fracture mechanical and electrical properties. While available knowledge on the topic is still limited, there is a complete absence of direct comparisons of the potential of the nano-species to improve strength and toughness and provide multifunctionality to the mortars. The study offers a comprehensive overview of these potentials, for mortars modified with pure graphene nanoplatelets and carbon nanotubes at consistent, directly comparable, concentrations up to 1.2 wt.%. Testing included flexure under pure bending moments, axial compression, electrical resistivity measurements and fracture tests under three point bending configuration; the latter were also independently assessed by acoustic emission. Differences in documented properties and optimal concentrations associated with improved mechanical performance were directly compared and rationalized in terms of nanospecies morphology. Dramatic, statistically consistent improvements in fracture behavior, up to 10-fold of control values, were documented for specific nanofiller concentrations, indicating an excellent potential of the material system for contemporary smart construction applications. An exceptionally favorable comparison of acoustic emission and fracture energy data confirmed that the non-destructive technique can independently assess the fracture performance of mortars with exceptional precision.
近期研究结果揭示了碳纳米材料,尤其是纳米管和石墨烯,赋予水泥卓越多功能潜力的可能性,可同时增强其力学性能、断裂力学性能和电学性能。尽管关于该主题的现有知识仍然有限,但对于纳米材料改善强度和韧性以及为砂浆提供多功能性的潜力,完全缺乏直接比较。本研究全面概述了这些潜力,涉及用纯石墨烯纳米片和碳纳米管在浓度高达1.2 wt.% 的一致且可直接比较的条件下改性的砂浆。测试包括纯弯矩下的弯曲、轴向压缩、电阻率测量以及三点弯曲配置下的断裂测试;后者还通过声发射进行独立评估。根据纳米材料形态,直接比较并合理化了记录的性能差异以及与改善力学性能相关的最佳浓度。对于特定的纳米填料浓度,记录到断裂行为有显著的、统计学上一致的改善,高达对照值的10倍,这表明该材料体系在当代智能建筑应用中具有巨大潜力。声发射和断裂能数据的特别有利比较证实,这种无损技术能够以极高的精度独立评估砂浆的断裂性能。