4.7 Article

Quantum and anharmonic effects in non-adiabatic transition state theory

Journal

JOURNAL OF CHEMICAL PHYSICS
Volume 159, Issue 17, Pages -

Publisher

AIP Publishing
DOI: 10.1063/5.0168612

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This paper investigates the quantitative descriptions of non-adiabatic transition rates at intermediate temperatures, focusing on the interplay between quantum effects and anharmonicity in the seam potential. The findings highlight the importance of quantum effects and anharmonicity in non-adiabatic reactions at intermediate temperatures.
Quantitative descriptions of non-adiabatic transition rates at intermediate temperatures are challenging due to the simultaneous importance of quantum and anharmonic effects. In this paper, the interplay between quantum effects-for motion across or along the seam of crossing-and anharmonicity in the seam potential is considered within the weak coupling limit. The well-known expression for quantized 1-D motion across the seam (i.e., tunneling) in the linear terms approximation is derived in the thermal domain using the Lagrangian formalism, which is then applied to the case when tunneling is distributed along the seam of crossing (treating motion along the seam classically). For high-frequency quantum modes, a vibrationally adiabatic (VA) approach is developed that introduces to the non-adiabatic rate constant a factor associated with high-frequency wavefunction overlap; this approach treats the high-frequency motion along the seam quantum mechanically. To test these methodologies, the reaction (NO)-O-2 <-> N-2 + O(P-3) was chosen. CCSD(T)-F12b/cc-pVTZ-F12 explorations of the (3)A'-(1)A' seam of N2O revealed that seam anharmonicity has a strong effect on the rate constant (a factor of similar to 20 at 2000 K). Several quantum effects were found to be significant at intermediate/lower temperatures, including the quantum N-N vibration that was coupled with seam anharmonicity using the VA approach. Finally, a 1-D approximation to non-adiabatic instanton theory is presented to estimate the validity limit of the linear terms model at low temperatures (similar to 250 K for N2O). We recommend that the assumptions built into many statistical theories for non-adiabatic reactions-harmonic behavior, classical motion, linear terms, and weak coupling-should be verified on a case-by-case basis.

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