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首页> 外文期刊>RSC Advances >Influence of graphene oxide as dispersed phase in cement mortar matrix in defining the crystal patterns of cement hydrates and its effect on mechanical, microstructural and crystallization properties
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Influence of graphene oxide as dispersed phase in cement mortar matrix in defining the crystal patterns of cement hydrates and its effect on mechanical, microstructural and crystallization properties

机译:氧化石墨烯作为分散相在水泥砂浆基质中对定义水泥水合物结晶模式的影响及其对机械,微观结构和结晶性能的影响

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In the present investigation, graphene oxide (GO) was prepared using oxidative treatment of graphite by Hummer's method. The synthesized graphene oxide (GO(a)) was characterized by FTIR, SEM/EDS, TEM, XRD, TGA and AFM. Size-reduction of GO(a) (which had a 14 nm sheet thickness and 900 nm average sheet size) was done using planetary ball milling, which produced GO(b) with a sheet thickness of 3 nm and an average sheet size of 100 nm. The effectiveness of GO(a) and GO(b) nanosheets at different dosages (by wt% of cement) in the improvement of mechanical strength of cement mortar matrices has been evaluated, and explained on the basis of microstructural analysis using FE-SEM observations, as well as from crystallization patterns using XRD patterns of GO-cement nanocomposites (GO-CNCs). Well-defined crystal growths of cement hydrates were observed, as revealed by FE-SEM micrographs, and crystallization patterns were found to be dependent upon factors such as the type of GO nanosheets, the concentration of GO and the curing time. The as-synthesized GO(a) (1% by weight of cement) enhanced the compressive strength of composites by a maximum of 63%, whereas the size-reduced GO(b) (1% by weight of cement) promoted better crystalline structures with a maximum strength enhancement of 86%. The present research work aimed to enhance GO reactivity by increasing its exfoliation and its count by mechanical milling, and to exploit it as a low-cost dispersed phase which has different sheet thicknesses and sheet sizes, for the strength enhancement of cementitious matrices by regulating crystal patterns and microstructural features.
机译:在本研究中,氧化石墨烯(GO)是通过使用Hummer方法对石墨进行氧化处理而制备的。通过FTIR,SEM / EDS,TEM,XRD,TGA和AFM对合成的氧化石墨烯(GO(a))进行了表征。 GO(a)(具有14 nm的板厚和900 nm的平均薄片尺寸)的尺寸减小是通过行星球磨完成的,该工艺生产出GO(b)的板厚为3 nm,平均薄片尺寸为100纳米评价了GO(a)和GO(b)纳米片在不同剂量(以水泥的重量%计)对水泥砂浆基质机械强度的改善方面的有效性,并基于使用FE-SEM观察的微观结构分析进行了解释,以及使用GO水泥纳米复合材料(GO-CNC)的XRD图谱的结晶图谱。如FE-SEM显微照片所示,观察到水泥水合物的晶体生长明确,并且发现结晶模式取决于诸如GO纳米片的类型,GO的浓度和固化时间等因素。合成后的GO(a)(按水泥重量计1%)最大可提高复合材料的抗压强度63%,而尺寸减小的GO(b)(按水泥重量计1%)可促进更好的晶体结构最大强度提高了86%。当前的研究工作旨在通过机械研磨增加去角质和数量来增强GO反应性,并将其用作低成本的分散相,其具有不同的板厚度和板尺寸,以通过调节晶体来增强胶凝基体的强度。图案和微观结构特征。

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