The role of vibrational excitation of reactants in driving reactions involving polyatomic species has been often studied by means of classical or quasi-classical trajectory simulations. We propose a different approach based on investigation of vibrational features of the Cl-⋯CH3Cl pre-reaction complex for the Cl- + CH3Cl SN2 reaction. We present vibrational power spectra and frequency estimates for the title pre-reaction complex calculated at the level of classical, semiclassical, and second-order vibrational perturbation theory on a pre-existing analytical potential energy surface. The main goals of the paper are the study of anharmonic effects and understanding of vibrational couplings that permit energy transfer between the collisional kinetic energy and the internal vibrations of the reactants. We provide both classical and quantum pictures of intermode couplings and show that the SN2 mechanism is favored by the coupling of a C-Cl bend involving the Cl- projectile with the CH3 rocking motion of the target molecule. We also illustrate how the routines needed for semiclassical vibrational spectroscopy simulations can be interfaced in a user-friendly way to pre-existing molecular dynamics software. In particular, we present an implementation of semiclassical spectroscopy into the VENUS suite of codes, thus providing a useful computational tool for users who are not experts of semiclassical dynamics.

A quantum mechanical insight into S(N)2 reactions: Semiclassical initial value representation calculations of vibrational features of the Cl-center dot center dot center dot CH3Cl pre-reaction complex with the VENUS suite of codes / X. Ma, G. Di Liberto, R. Conte, W.L. Hase, M. Ceotto. - In: THE JOURNAL OF CHEMICAL PHYSICS. - ISSN 0021-9606. - 149:16(2018 Oct 28), pp. 164113.1-164113.11. [10.1063/1.5054399]

A quantum mechanical insight into S(N)2 reactions: Semiclassical initial value representation calculations of vibrational features of the Cl-center dot center dot center dot CH3Cl pre-reaction complex with the VENUS suite of codes

G. Di Liberto;R. Conte;M. Ceotto
2018

Abstract

The role of vibrational excitation of reactants in driving reactions involving polyatomic species has been often studied by means of classical or quasi-classical trajectory simulations. We propose a different approach based on investigation of vibrational features of the Cl-⋯CH3Cl pre-reaction complex for the Cl- + CH3Cl SN2 reaction. We present vibrational power spectra and frequency estimates for the title pre-reaction complex calculated at the level of classical, semiclassical, and second-order vibrational perturbation theory on a pre-existing analytical potential energy surface. The main goals of the paper are the study of anharmonic effects and understanding of vibrational couplings that permit energy transfer between the collisional kinetic energy and the internal vibrations of the reactants. We provide both classical and quantum pictures of intermode couplings and show that the SN2 mechanism is favored by the coupling of a C-Cl bend involving the Cl- projectile with the CH3 rocking motion of the target molecule. We also illustrate how the routines needed for semiclassical vibrational spectroscopy simulations can be interfaced in a user-friendly way to pre-existing molecular dynamics software. In particular, we present an implementation of semiclassical spectroscopy into the VENUS suite of codes, thus providing a useful computational tool for users who are not experts of semiclassical dynamics.
Potential-energy surface; SN2 nucleophilic-substitution; classical S-matrix; molecular-dynamics; CL-+CH3CL association; resonance states; systems; scattering; spectra; propagation
Settore CHIM/02 - Chimica Fisica
28-ott-2018
Article (author)
File in questo prodotto:
File Dimensione Formato  
Ceotto_18_VENUS.pdf

accesso riservato

Tipologia: Publisher's version/PDF
Dimensione 1.72 MB
Formato Adobe PDF
1.72 MB Adobe PDF   Visualizza/Apri   Richiedi una copia
SC-IVR_FINAL.pdf

accesso aperto

Tipologia: Post-print, accepted manuscript ecc. (versione accettata dall'editore)
Dimensione 843 kB
Formato Adobe PDF
843 kB 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/2434/599477
Citazioni
  • ???jsp.display-item.citation.pmc??? 3
  • Scopus 21
  • ???jsp.display-item.citation.isi??? 18
social impact