Thermal rate constants for Mu + CH4, Mu + C2H6 and Mu + C3H8 and their equivalent reactions with H were evaluated with ab initio instanton rate theory. The potential-energy surfaces are fitted using Gaussian process regression to high-level electronic-structure calculations evaluated around the tunnelling pathway. This method was able to successfully reproduce various experimental measurements for the rate constant of these reactions. However, it was not able to reproduce the faster-than-expected rate of Mu + C3H8 at 300 K reported by Fleming et al. [Phys. Chem. Chem. Phys., 2015, 17, 19901 and Phys. Chem. Chem. Phys., 2020, 22, 6326]. Analysis of our results indicates that the kinetic isotope effect at this temperature is not significantly...
The instanton method obtains approximate tunneling rates from the minimum-action path (known as the ...
The thermal rate coefficients and kinetic isotope effects have been calculated using ring polymer mo...
Andersson S, Nyman G, Arnaldsson A, Manthe U, Jonsson H. Comparison of Quantum Dynamics and Quantum ...
Thermal rate constants for Mu + CH4, Mu + C2H6 and Mu + C3H8 and their equivalent reactions with H w...
Copyright © 1990 American Institute of Physics.The reaction kinetics for the addition of the muonium...
We report reduced dimensionality quantum mechanical calculations of the rate constants of the Mu + C...
We consider three reactions: H+H2→H2+H; Mu+H2→MuH+H; Mu+D2→MuD+D. We calculate accurate quantum mech...
We consider three reactions: H+H2→H2+H; Mu+H2→MuH+H; Mu+D2→MuD+D. We calculate accurate quantum mech...
Reaction rates for the gas-phase reactions Mu+ CH₄ → MuH + CH₃ and Mu + C₂H₆ → MuH + C₂H₅ have been ...
The instanton method obtains approximate tunneling rates from the minimum-action path (known as the ...
Rate constants and kinetic isotope effects are calculated for the CH3+H2 ? CH4+H reaction by two the...
The instanton method obtains approximate tunneling rates from the minimum-action path (known as the ...
The instanton method obtains approximate tunneling rates from the minimum-action path (known as the ...
The instanton method obtains approximate tunneling rates from the minimum-action path (known as the ...
Reaction rates for the gas-phase reactions Mu+ CH₄ → MuH + CH₃ and Mu + C₂H₆ → MuH + C₂H₅ have been ...
The instanton method obtains approximate tunneling rates from the minimum-action path (known as the ...
The thermal rate coefficients and kinetic isotope effects have been calculated using ring polymer mo...
Andersson S, Nyman G, Arnaldsson A, Manthe U, Jonsson H. Comparison of Quantum Dynamics and Quantum ...
Thermal rate constants for Mu + CH4, Mu + C2H6 and Mu + C3H8 and their equivalent reactions with H w...
Copyright © 1990 American Institute of Physics.The reaction kinetics for the addition of the muonium...
We report reduced dimensionality quantum mechanical calculations of the rate constants of the Mu + C...
We consider three reactions: H+H2→H2+H; Mu+H2→MuH+H; Mu+D2→MuD+D. We calculate accurate quantum mech...
We consider three reactions: H+H2→H2+H; Mu+H2→MuH+H; Mu+D2→MuD+D. We calculate accurate quantum mech...
Reaction rates for the gas-phase reactions Mu+ CH₄ → MuH + CH₃ and Mu + C₂H₆ → MuH + C₂H₅ have been ...
The instanton method obtains approximate tunneling rates from the minimum-action path (known as the ...
Rate constants and kinetic isotope effects are calculated for the CH3+H2 ? CH4+H reaction by two the...
The instanton method obtains approximate tunneling rates from the minimum-action path (known as the ...
The instanton method obtains approximate tunneling rates from the minimum-action path (known as the ...
The instanton method obtains approximate tunneling rates from the minimum-action path (known as the ...
Reaction rates for the gas-phase reactions Mu+ CH₄ → MuH + CH₃ and Mu + C₂H₆ → MuH + C₂H₅ have been ...
The instanton method obtains approximate tunneling rates from the minimum-action path (known as the ...
The thermal rate coefficients and kinetic isotope effects have been calculated using ring polymer mo...
Andersson S, Nyman G, Arnaldsson A, Manthe U, Jonsson H. Comparison of Quantum Dynamics and Quantum ...