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MOC Doped with Graphene Nanoplatelets: The Influence of the Mixture Preparation Technology on Its Properties

机译:MOC掺杂有石墨烯纳米薄层:混合物制备技术对其性质的影响

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摘要

The ongoing tendency to create environmentally friendly building materials is nowadays connected with the use of reactive magnesia-based composites. The aim of the presented research was to develop an ecologically sustainable composite material based on MOC (magnesium oxychloride cement) with excellent mechanical, chemical, and physical properties. The effect of the preparation procedure of MOC pastes doped with graphene nanoplatelets on their fresh and hardened properties was researched. One-step and two-step homogenization techniques were proposed as prospective tools for the production of MOC-based composites of advanced parameters. The conducted experiments and analyses covered X-ray fluorescence, scanning electron microscopy, energy-dispersive spectroscopy, high-resolution transmission electron microscopy, sorption analysis, X-ray diffraction, and optical microscopy. The viscosity of the fresh mixtures was monitored using a rotational viscometer. For the hardened composites, macro- and micro-structural parameters were measured together with the mechanical parameters. These tests were performed after 7 days and 14 days. The use of a carbon-based nanoadditive led to a significant drop in porosity, thus densifying the MOC matrix. Accordingly, the mechanical resistance was greatly improved by graphene nanoplatelets. The two-step homogenization procedure positively affected all researched functional parameters of the developed composites (e.g., the compressive strength increase of approximately 54% after 7 days, and 37% after 14 days, respectively) and can be recommended for the preparation of advanced functional materials reinforced with graphene.
机译:如今,正在进行环境友好的建筑材料的趋势与使用反应性氧化镁基复合材料相连。本研究的目的是基于MOC(氯氧化镁水泥)的生态可持续复合材料,具有优异的机械,化学和物理性质。研究了MoC糊剂的制备方法对其新鲜和硬化性质的石墨烯纳米克掺杂物掺杂。一步和两步均化技术被提出为生产高级参数的基于MOC的复合材料的前瞻性工具。进行的实验和分析覆盖X射线荧光,扫描电子显微镜,能量分散光谱,高分辨率透射电子显微镜,吸附分析,X射线衍射和光学显微镜。使用旋转粘度计监测新鲜混合物的粘度。对于硬化的复合材料,与机械参数一起测量宏观和微结构参数。这些试验在7天和14天后进行。使用基于碳的纳米彩力导致孔隙率显着下降,从而致密于MOC基质。因此,通过石墨烯纳米薄层大大提高了机械抗性。两步均质化程序积极影响所有研究的开发复合材料的功能参数(例如,在7天后的抗压强度增加约54%,分别在14天后的37%),可以推荐用于制备高级功能用石墨烯加固的材料。

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