Anharmonic effects due to the shape of the molecular potential energy surface far from the equilibrium geometry are major responsible for the deviations of the actual frequencies of vibration from the harmonic estimates. However, anharmonic effects are not the solely responsible for this. Quantum nuclear effects also play a prominent role in theoretical vibrational spectroscopy as they contribute to drive away the molecular vibrational frequencies from their harmonic counterpart. The consequence of this is that anharmonicity and quantum effects may be difficult to separate spectroscopically and get often confused. In this work we show that anharmonicity can be detected by means of classical simulations, while quantum nuclear effects need to be identified by means of an approach originating from either the time independent or the time dependent Schroedinger equation of quantum mechanics. We show that classical methods are sensitive to the temperature or energy conditions under which they are undertaken. This leads to wrong frequency estimates, when dealing with few-Kelvin experiments, if one performs simulations simply matching the experimental temperature. Conversely, quantum approaches are not affected by this issue and they provide more and better information.

Anharmonicity and quantum nuclear effects in theoretical vibrational spectroscopy: A molecular tale of two cities / R. Conte, C. Aieta, G. Botti, M. Cazzaniga, M. Gandolfi, C. Lanzi, G. Mandelli, D. Moscato, M. Ceotto. - In: THEORETICAL CHEMISTRY ACCOUNTS. - ISSN 1432-2234. - 142:(2023 May 04), pp. 53.1-53.11. [10.1007/s00214-023-02993-y]

Anharmonicity and quantum nuclear effects in theoretical vibrational spectroscopy: A molecular tale of two cities

R. Conte
Primo
;
C. Aieta
Secondo
;
G. Botti;M. Gandolfi;C. Lanzi;G. Mandelli;D. Moscato
Penultimo
;
M. Ceotto
Ultimo
2023

Abstract

Anharmonic effects due to the shape of the molecular potential energy surface far from the equilibrium geometry are major responsible for the deviations of the actual frequencies of vibration from the harmonic estimates. However, anharmonic effects are not the solely responsible for this. Quantum nuclear effects also play a prominent role in theoretical vibrational spectroscopy as they contribute to drive away the molecular vibrational frequencies from their harmonic counterpart. The consequence of this is that anharmonicity and quantum effects may be difficult to separate spectroscopically and get often confused. In this work we show that anharmonicity can be detected by means of classical simulations, while quantum nuclear effects need to be identified by means of an approach originating from either the time independent or the time dependent Schroedinger equation of quantum mechanics. We show that classical methods are sensitive to the temperature or energy conditions under which they are undertaken. This leads to wrong frequency estimates, when dealing with few-Kelvin experiments, if one performs simulations simply matching the experimental temperature. Conversely, quantum approaches are not affected by this issue and they provide more and better information.
Semiclassical; Vibrational; Nuclear; Spectrum; Quantum effects
Settore CHIM/02 - Chimica Fisica
   A web-platform interfaced software for spectroscopic molecular characterization and early diagnosis of Parkinson's disease (SEMISOFT)
   SEMISOFT
   EUROPEAN COMMISSION
   101081361

   Divide and Conquer ad initio semiclassical molecular dynamics for spectropic calculations of complex systems (SEMICOMPLEX)
   SEMICOMPLEX
   EUROPEAN COMMISSION
   647107
4-mag-2023
Article (author)
File in questo prodotto:
File Dimensione Formato  
Persico_Festschrift.pdf

accesso aperto

Descrizione: Research
Tipologia: Publisher's version/PDF
Dimensione 1.38 MB
Formato Adobe PDF
1.38 MB Adobe PDF Visualizza/Apri
Pubblicazioni consigliate

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/968065
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 3
  • ???jsp.display-item.citation.isi??? 3
social impact