4.6 Article

Stabilizing the Exotic Carbonic Acid by Bisulfate Ion

期刊

MOLECULES
卷 27, 期 1, 页码 -

出版社

MDPI
DOI: 10.3390/molecules27010008

关键词

carbonic acid; bisulfate ion; density functional theory calculations; molecular dynamics simulations

资金

  1. Key Research and Development Program of Hebei [21327118D]
  2. National Natural Science Foundation of China [22003048]

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In this study, a novel ionic complex was systematically studied to investigate the stabilization of carbonic acid by bisulfate ion. It was found that bisulfate ion efficiently stabilized all three conformers of carbonic acid and reduced their energy differences compared to the isolated molecule. The complex showed good thermal stability at finite temperatures, and the hydrogen bonding properties and infrared spectra were also explored. This research is potentially important for understanding the fate of carbonic acid in complex environments.
Carbonic acid is an important species in a variety of fields and has long been regarded to be non-existing in isolated state, as it is thermodynamically favorable to decompose into water and carbon dioxide. In this work, we systematically studied a novel ionic complex [H2CO3 center dot HSO4](-) using density functional theory calculations, molecular dynamics simulations, and topological analysis to investigate if the exotic H2CO3 molecule could be stabilized by bisulfate ion, which is a ubiquitous ion in various environments. We found that bisulfate ion could efficiently stabilize all the three conformers of H2CO3 and reduce the energy differences of isomers with H2CO3 in three different conformations compared to the isolated H2CO3 molecule. Calculated isomerization pathways and ab initio molecular dynamics simulations suggest that all the optimized isomers of the complex have good thermal stability and could exist at finite temperatures. We also explored the hydrogen bonding properties in this interesting complex and simulated their harmonic infrared spectra to aid future infrared spectroscopic experiments. This work could be potentially important to understand the fate of carbonic acid in certain complex environments, such as in environments where both sulfuric acid (or rather bisulfate ion) and carbonic acid (or rather carbonic dioxide and water) exist.

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