We investigate whether making the friction spatially dependent on the reaction coordinate introduces quantum effects into the thermal reaction rates for dissipative reactions. Quantum rates are calculated using the numerically exact multi-configuration time-dependent Hartree method, as well as the approximate ring-polymer molecular dynamics (RPMD), ring-polymer instanton methods, and classical molecular dynamics. By conducting simulations across a wide range of temperatures and friction strengths, we can identify the various regimes that govern the reactive dynamics. At high temperatures, in addition to the spatial-diffusion and energy-diffusion regimes predicted by Kramer’s rate theory, a (coherent) tunneling-dominated regime is identified at low friction. At low temperatures, incoherent tunneling dominates most of Kramer’s curve, except at very low friction, when coherent tunneling becomes dominant. Unlike in classical mechanics, the bath’s influence changes the equilibrium time-independent properties of the system, leading to a complex interplay between spatially dependent friction and nuclear quantum effects even at high temperatures. More specifically, a realistic friction profile can lead to an increase (or decrease) of the quantum (classical) rates with friction within the spatial-diffusion regime, showing that classical and quantum rates display qualitatively different behaviors. Except at very low frictions, we find that RPMD captures most of the quantum effects in the thermal reaction rates.

Quantum rates in dissipative systems with spatially varying friction / O. Bridge, P. Lazzaroni, R. Martinazzo, M. Rossi, S.C. Althorpe, Y. Litman. - In: THE JOURNAL OF CHEMICAL PHYSICS. - ISSN 0021-9606. - 161:2(2024 Jul 14), pp. 024110.1-024110.12. [10.1063/5.0216823]

Quantum rates in dissipative systems with spatially varying friction

R. Martinazzo;
2024

Abstract

We investigate whether making the friction spatially dependent on the reaction coordinate introduces quantum effects into the thermal reaction rates for dissipative reactions. Quantum rates are calculated using the numerically exact multi-configuration time-dependent Hartree method, as well as the approximate ring-polymer molecular dynamics (RPMD), ring-polymer instanton methods, and classical molecular dynamics. By conducting simulations across a wide range of temperatures and friction strengths, we can identify the various regimes that govern the reactive dynamics. At high temperatures, in addition to the spatial-diffusion and energy-diffusion regimes predicted by Kramer’s rate theory, a (coherent) tunneling-dominated regime is identified at low friction. At low temperatures, incoherent tunneling dominates most of Kramer’s curve, except at very low friction, when coherent tunneling becomes dominant. Unlike in classical mechanics, the bath’s influence changes the equilibrium time-independent properties of the system, leading to a complex interplay between spatially dependent friction and nuclear quantum effects even at high temperatures. More specifically, a realistic friction profile can lead to an increase (or decrease) of the quantum (classical) rates with friction within the spatial-diffusion regime, showing that classical and quantum rates display qualitatively different behaviors. Except at very low frictions, we find that RPMD captures most of the quantum effects in the thermal reaction rates.
Settore CHEM-02/A - Chimica fisica
14-lug-2024
10-lug-2024
Article (author)
File in questo prodotto:
File Dimensione Formato  
SI-1.pdf

accesso aperto

Descrizione: Supplemental Information
Tipologia: Altro
Dimensione 336.2 kB
Formato Adobe PDF
336.2 kB Adobe PDF Visualizza/Apri
024110_1_5.0216823.pdf

accesso aperto

Tipologia: Publisher's version/PDF
Dimensione 5.13 MB
Formato Adobe PDF
5.13 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/2434/1116629
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 2
  • ???jsp.display-item.citation.isi??? 2
  • OpenAlex ND
social impact