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Sensitivity of semiclassical vibrational spectroscopy to potential energy surface accuracy: A test on formaldehyde.

Academic Article
Publication Date:
2020
Citation:
Sensitivity of semiclassical vibrational spectroscopy to potential energy surface accuracy: A test on formaldehyde / R. Conte, G. Botti, M. Ceotto. - In: VIBRATIONAL SPECTROSCOPY. - ISSN 0924-2031. - 106:(2020 Jan). [10.1016/j.vibspec.2019.103015]
abstract:
A set of permutationally invariant potential energy surfaces for the electronic ground state of formaldehyde is built at several levels of electronic theory and atomic orbital basis sets starting from a database of more than 34000 ab initio energies. The reliability of the fitted surfaces is determined by comparing the calculated harmonic frequencies with the corresponding ab initio values. Semiclassical estimates of the quantum frequencies of vibration are presented, and their dependence on the employed level of theory, type of atomic orbital basis set, and complexity of the fit is investigated. Comparisons to experimental data show that anharmonic frequencies are influenced by the precision of the fit, while accurate frequency values are obtained also with density functional theory. Results and conclusions support the use of ab initio “on-the-fly” semiclassical dynamics as a means of spectroscopic investigation when high level analytical potential energy surfaces are not available.
IRIS type:
01 - Articolo su periodico
Keywords:
Semiclassical Dynamics; Vibrational Spectroscopy; PES fitting; Formaldehyde
List of contributors:
R. Conte, G. Botti, M. Ceotto
Authors of the University:
CEOTTO MICHELE ( author )
CONTE RICCARDO ( author )
Link to information sheet:
https://air.unimi.it/handle/2434/699476
Full Text:
https://air.unimi.it/retrieve/handle/2434/699476/1374718/SC_H2CO_RESUB.pdf
https://air.unimi.it/retrieve/handle/2434/699476/1374727/SC_H2CO_FINAL.pdf
Project:
Studio teorico-computazionale della bonifica fotocatalitica di atmosfere inquinate (QURE)
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