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Nanoscale insight on the initial hydration mechanism of magnesium phosphate cement

机译:纳米级洞察磷酸镁水泥初始水化机理

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摘要

The hydration rate, microstructure, mechanical properties and durability of Magnesium phosphate cement (MPC) prepared by different kinds of phosphates are quite different. These differences in macroscopic properties are essentially determined by microscopic chemical reactions. Therefore, in this paper, the adsorption mechanism of MgO interface to water and ions in the initial hydration process of MPC and the hydration structure of different ions were discussed at the molecular level. Herein, the structure and dynamics properties of water, NH4+, Na+, K+ and Cl ions at MgO interface were analyzed by molecular dynamics method. The results show that the water molecules near the MgO interface can be connected to the matrix oxygen through hydrogen bonding and have a Coulomb interaction with the Mg on the interface. Therefore, the water molecules accumulate and stratify at the interface and the density distribution curve of water molecules forms a peak near the interface. This explains the stage of MgO adsorption of water molecules during the initial hydration of MPC. Besides, a large amount of ammonium ion, sodium ion and potassium ion are adsorbed on the MgO surface, and the cation density distribution curve also forms a peak near the interface. In addition, the radius of sodium ion is smaller and the Na-Os bond is stronger than that of NH4+ and K+ (Os represents the oxygen atom in MgO). Hence, the number of sodium ions adsorbed to the interface is the largest, the radial distribution function (RDF) of Na-Os forms a high- strength and sharp peak, The Os coordination number of Na+ is more than that of NH4+ and K+. This also explains the experimental phenomenon that sodium magnesium phosphate cement has a faster hydration rate and shorter setting time than ammonium magnesium phosphate cement and potassium magnesium phosphate cement. Due to the adsorption of the interface, the mean square displacement of cations has decreased to some extent compared with that in the corresponding pure solution models. This study provides a basic understanding of the initial hydration mechanism of MPC at the molecular level. (C) 2020 Published by Elsevier Ltd.
机译:通过不同种类磷酸盐制备的磷酸镁水泥(MPC)的水合速率,微观结构,机械性能和耐久性是完全不同的。宏观性质的这些差异基本上通过微观化学反应决定。因此,在分子水平下讨论了MPC初始水合过程中MgO界面与水和离子的吸附机理及不同离子的水合结构。本文,通过分子动力学方法分析了MgO界面中水,NH4 +,Na +,K +和Cl离子的结构和动力学性质。结果表明,MgO界面附近的水分子可以通过氢键连接到基质氧气,并在界面上具有与Mg的库仑相互作用。因此,水分子在界面处积聚并分层,水分子的密度分布曲线在界面附近形成峰。这解释了MPC初始水合过程中水分子的MgO吸附的阶段。此外,在MgO表面上吸附大量的铵离子,钠离子和钾离子,并且阳离子密度分布曲线也在界面附近形成峰。另外,钠离子的半径较小,Na-OS键比NH 4 +和K +的键更强(OS代表MgO中的氧原子)。因此,吸附到界面的钠离子的数量是最大的,Na-OS的径向分布函数(RDF)形成高强度和锐峰,OS配位Na +的数量大于NH4 +和K +。这还解释了磷酸镁水泥具有更快的水合速率和比磷酸镁水泥和磷酸钾水泥的较短凝固时间更快的实验现象。由于界面的吸附,与相应的纯解决方案模型中的相比,阳离子的平均方形位移在一定程度上降低。该研究提供了对MPC在分子水平的初始水化机制的基本理解。 (c)2020由elestvier有限公司发布

著录项

  • 来源
    《Construction and Building Materials》 |2021年第22期|122213.1-122213.11|共11页
  • 作者单位

    Beijing Univ Technol Beijing Key Lab Earthquake Engn & Struct Retrofit Minist Educ Key Lab Urban Secur & Disaster Engn Beijing 100124 Peoples R China;

    Beijing Univ Technol Beijing Key Lab Earthquake Engn & Struct Retrofit Minist Educ Key Lab Urban Secur & Disaster Engn Beijing 100124 Peoples R China;

    Qingdao Univ Technol Dept Civil Engn Qingdao 266033 Peoples R China;

    Beijing Univ Technol Beijing Key Lab Earthquake Engn & Struct Retrofit Minist Educ Key Lab Urban Secur & Disaster Engn Beijing 100124 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Magnesium phosphate cement; Hydration; MgO; Molecular dynamic; Surface; Adsorption;

    机译:磷酸镁水泥;水合;MgO;分子动感;表面;吸附;
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