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Understanding the Mechanisms of CaO Carbonation: Role of Point Defects in CaCO3 by Atomic-Scale Simulations

机译:了解CaO碳化的机理:通过原子尺度模拟在CaCO3中点缺陷的作用

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In order to improve our understanding of the mechanisms Underlying the carbonation of CaO by CO2, a practically important reactiony We present a detailed atomic-scale study, by means of ab initio density functional calculations, of the point defect properties in calcite CaCO3. We perform a thorough investigation of the chemical potentials relevant in experimental conditions. Focusing on e C and O defects closely related to CO2 diffusion, we point out { the absence of interstitial C except possibly in complex form with other defects, whereas interstitial O is found stable. Whereas O and C vacancies are not significant in neutral form at low temperature, their role is clearly revealed when charged states are included. The formation energies of O and G vacancies, together With the profiles of chemical potentials across the growing calcite layer, are consistent with joint C and O diffusion by separate vacancy mechanisms of roughly equal amplitudes. As regards the possible influence of complex point defects, our results suggest that interstitial diffusion of CO2 is unfavorable. Conversely, the strong binding or the CO2 vacancy may enhance CO diffusion.
机译:为了增进我们对CO2碳酸化CaO的机理的认识,在实践中非常重要。我们通过从头算密度函数计算,对方解石CaCO3中的点缺陷性质进行了详细的原子级研究。我们对与实验条件相关的化学势进行了彻底的调查。着眼于与CO2扩散密切相关的e C和O缺陷,我们指出{除了可能与其他缺陷以复杂形式存在间隙C之外,没有间隙C,而间隙O被发现是稳定的。在低温下,O和C的空位在中性形式下并不重要,但是当包含带电状态时,它们的作用就可以清楚地揭示出来。 O和G空位的形成能,以及跨越方解石层的化学势分布,与C和O的联合扩散(通过振幅大致相等的单独空位机制)一致。关于复杂点缺陷的可能影响,我们的结果表明,CO2的间隙扩散是不利的。相反,强结合或CO 2空位可增强CO扩散。

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