论文标题

探索基于氧化镁的水泥中MGO和MG(OH)2的水合和碳化机制

Exploring Mechanisms of Hydration and Carbonation of MgO and Mg(OH)2 in Reactive Magnesium Oxide-based Cements

论文作者

Gardeh, Mina Ghane, Kistanov, Andrey A., Nguyen, Hoang, Manzano, Hegoi, Cao, Wei, Kinnunen, Paivo

论文摘要

氧化镁(MGO)的基于氧化镁(RMC)可以在碳捕获过程中起关键作用。然而,对控制该系统中碳化程度和水合程度的驱动力的知识仍然有限。在这项工作中,基于密度功能理论的模拟用于研究在环境条件下制造RMC期间发生的反应的物理性质。考虑参数指标,例如吸附能,电荷转移,电子定位函数,吸附/解离能屏障以及H2O和二氧化碳分子与MGO和Brucite(MG(OH)2)簇的相互作用机制。评估了与RMC相关的以下水合和碳酸相互作用i)MGO的碳酸化,II)MGO的水合,水合MGO的碳酸化,III)Mg(OH)2,IV)Mg(OH)2和V)Mg(OH)2和V)水合碳酸Mg(OH)2。这些机制的能屏障和反应途径的比较表明,MGO的碳化受到H2O分子的存在阻碍,而Mg(OH)2的碳化受到初始碳酸盐和水合物层的形成以及过量H2O分子的存在阻碍。为了将这些发现与散装矿物表面进行比较,研究了CO2和H2O分子与MGO(001)和MG(OH)2(001)表面的相互作用。因此,这项工作深入了解了反应的物理性质以及碳酸镁生产的机制,这可能对其发育有益。

Reactive magnesium oxide (MgO)-based cement (RMC) can play a key role in carbon capture processes. However, knowledge on the driving forces that control the degree of carbonation and hydration and rate of reactions in this system remains limited. In this work, density functional theory-based simulations are used to investigate the physical nature of the reactions taking place during the fabrication of RMCs under ambient conditions. Parametric indicators such as adsorption energies, charge transfer, electron localization function, adsorption/dissociation energy barriers and the mechanisms of interaction of H2O and CO2 molecules with MgO and brucite (Mg(OH)2) clusters are considered. The following hydration and carbonation interactions relevant to RMCs are evaluated i) carbonation of MgO, ii) hydration of MgO, carbonation of hydrated MgO, iii) carbonation of Mg(OH)2, iv) hydration of Mg(OH)2 and v) hydration of carbonated Mg(OH)2. A comparison of the energy barriers and reaction pathways of these mechanisms shows that the carbonation of MgO is hindered by presence of H2O molecules, while the carbonation of Mg(OH)2 is hindered by the formation of initial carbonate and hydrate layers as well as presence of excessed H2O molecules. To compare these finding to bulk mineral surfaces, the interactions of the CO2 and H2O molecules with the MgO(001) and Mg(OH)2 (001) surfaces are studied. Therefore, this work presents deep insights into the physical nature of the reactions and the mechanisms involved in hydrated magnesium carbonates production that can be beneficial for its development.

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