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Molecular dynamics simulations predict an accelerated dissociation of H2CO3 at the air-water interface

机译:分子动力学模拟预测H2CO3在空气-水界面的加速离解

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The dissociation and decomposition reactions of carbonic acid (H2CO3) in bulk water have been thoroughly studied, but little is known about its reactivity at the air-water interface. Herein, we investigate the dissociation reaction of H2CO3 at the air-water interface using ab initio molecular dynamics and metadynamics. Our results indicate that H2CO3 (pK_a = 3.45) dissociates faster at the water surface than in bulk water, in contrast to recent experiments and simulations which have shown that HN03 (pK_a = -1.3) has a lower propensity to dissociate at the water surface than in bulk water. We find that the water surface allows for a more structured solvation environment around H2CO3 than in bulk water, which contributes to a decrease in the dissociation energy barrier via a stabilization of the transition state relative to the undissociated acid. Given its decreased kinetic stability at the air-water interface, H2CO3 may play an important role in the acidification of atmospheric aerosols and water droplets.
机译:已经对碳酸(H2CO3)在散装水中的分解和分解反应进行了彻底的研究,但对其在空气-水界面的反应性知之甚少。在这里,我们使用从头算分子动力学和元动力学研究H2CO3在空气-水界面的离解反应。我们的结果表明,H2CO3(pK_a = 3.45)在水表面的解离速度比散装水中快,这与最近的实验和模拟相反,后者表明HNO3(pK_a = -1.3)在水表面的解离倾向低于在散装水中。我们发现,与在散装水中相比,水表面允许在H2CO3周围形成更结构化的溶剂化环境,这有助于通过相对于未离解酸稳定过渡态来降低离解能垒。由于H2CO3在空气-水界面的动力学稳定性下降,因此在大气气溶胶和水滴的酸化中可能起重要作用。

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