<div class="csl-bib-body">
<div class="csl-entry">Dinu, D. F., Klein, B., Zhang, C., Talmazan, R. A., Loerting, T., Grothe, H., Kaiser, R. I., & Podewitz, M. (2025). UV-Vis Spectra of Carbonic Acid: Rationalizing Experimental Redshifts between Monomer and Bulk based on (H2CO3) Calculations. <i>ChemPhysChem</i>, <i>26</i>(18), Article e202500282. https://doi.org/10.1002/cphc.202500282</div>
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dc.identifier.issn
1439-4235
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/222693
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dc.description.abstract
The UV-Vis spectra of H₂CO₃ are investigated in a combined experimental and theoretical approach. A sample of solid H₂CO₃, prepared by electron irradiation of water-carbon dioxide ice, shows characteristics of both amorphous and crystalline H₂CO₃ in the infrared spectrum. To rationalize the experimentally observed redshift in the UV-Vis spectra between monomer and bulk H₂CO₃, a systematic computational study is devised using time-dependent density functional theory. H₂CO₃ is investigated from the monomer to (H₂CO₃)n clusters, with n up to 66; in addition regular oligomer arrangements derived from previously proposed ambient-pressure H₂CO₃ crystal structures are also examined. The calculations explain the UV-Vis absorption of solid carbonic acid, which is redshifted by ≈2 eV and ≈5 eV compared to the experimentally observed adiabatic ionization energy of the H₂CO₃ monomer. It is highlighted how these shifts emerge due to 1) increasing cluster size, 2) nonplanar arrangements, and 3) noncovalent interactions between H₂CO₃ chains and sheets. The study aims to establish spectrum-to-structure relationships and serves as computational reference data for astrochemical applications in the absence of experimental laboratory data of H₂CO₃ oligomers.
en
dc.language.iso
en
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dc.publisher
WILEY-V C H VERLAG GMBH
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dc.relation.ispartof
ChemPhysChem
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dc.subject
UV–Vis
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dc.subject
carbonic acid
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dc.subject
conformational sampling
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dc.subject
redshift
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dc.subject
time‐dependent density functional theory
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dc.title
UV-Vis Spectra of Carbonic Acid: Rationalizing Experimental Redshifts between Monomer and Bulk based on (H2CO3) Calculations