4.7 Article

Direct simulation of proton-coupled electron transfer across multiple regimes

期刊

JOURNAL OF CHEMICAL PHYSICS
卷 138, 期 13, 页码 -

出版社

AMER INST PHYSICS
DOI: 10.1063/1.4797462

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资金

  1. National Science Foundation (NSF) CAREER Award [CHE-1057112]
  2. (U.S.) Department of Energy (DOE) [DE-SC0006598]
  3. NSF Graduate Research Fellowship [DGE-1144469]
  4. Camille and Henry Dreyfus Foundation New Faculty Award
  5. Alfred P. Sloan Foundation Research Fellowship
  6. National Energy Research Scientific Computing Center (NERSC) [DE-AC02-05CH11231]
  7. Oak Ridge Leadership Computing Facility (OLCF) [DE-AC05-00OR22725]
  8. U.S. Department of Energy (DOE) [DE-SC0006598] Funding Source: U.S. Department of Energy (DOE)
  9. Division Of Chemistry
  10. Direct For Mathematical & Physical Scien [1057112] Funding Source: National Science Foundation

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The coupled transfer of electrons and protons is a central feature of biological and molecular catalysis, yet fundamental aspects of these reactions remain poorly understood. In this study, we extend the ring polymer molecular dynamics (RPMD) method to enable direct simulation of proton-coupled electron transfer (PCET) reactions across a wide range of physically relevant regimes. In a system-bath model for symmetric, co-linear PCET in the condensed phase, RPMD trajectories reveal distinct kinetic pathways associated with sequential and concerted PCET reaction mechanisms, and it is demonstrated that concerted PCET proceeds by a solvent-gating mechanism in which the reorganization energy is mitigated by charge cancellation among the transferring particles. We further employ RPMD to study the kinetics and mechanistic features of concerted PCET reactions across multiple coupling regimes, including the fully non-adiabatic (both electronically and vibrationally non-adiabatic), partially adiabatic (electronically adiabatic, but vibrationally non-adiabatic), and fully adiabatic (both electronically and vibrationally adiabatic) limits. Comparison of RPMD with the results of PCET rate theories demonstrates the applicability of the direct simulation method over a broad range of conditions; it is particularly notable that RPMD accurately predicts the crossover in the thermal reaction rates between different coupling regimes while avoiding a priori assumptions about the PCET reaction mechanism. Finally, by utilizing the connections between RPMD rate theory and semiclassical instanton theory, we show that analysis of ring-polymer configurations in the RPMD transition path ensemble enables the a posteriori determination of the coupling regime for the PCET reaction. This analysis reveals an intriguing and distinct transient-proton-bridge mechanism for concerted PCET that emerges in the transition between the proton-mediated electron superexchange mechanism for fully non-adiabatic PCET and the hydrogen atom transfer mechanism for partially adiabatic PCET. Taken together, these results provide a unifying picture of the mechanisms and physical driving forces that govern PCET across a wide range of physical regimes, and they raise the possibility for PCET mechanisms that have not been previously reported. (C) 2013 American Institute of Physics. [http://dx.doi.org/10.1063/1.4797462]

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