It has been shown recently that in order for real-time correlation functions obtained from centroid molecular dynamics (CMD) simulations to be directly related, without further approximations, to the corresponding quantum correlation functions, one of the operators should be linear in the position and/or momentum [Jang and Voth, J. Chem. Phys. 111, 2357 (1999)]. Standard reaction rate theory relates the rate constant to the flux–Heaviside or the flux–flux correlation functions, which involve two nonlinear operators and therefore cannot be calculated via CMD without further approximations. We present an alternative, and completely equivalent, reaction rate theory which is based on the position–flux correlation function. The new formalism opens the door to more rigorously using CMD for the calculation of quantum reaction rate constants in general many-body systems. The new method is tested on a system consisting of a double-well potential bilinearly coupled to a harmonic bath. The results obtained via CMD are found to be in good agreement with the numerically exact results for a wide range of frictions and temperatures.
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22 November 2001
Research Article|
November 22 2001
Quantum-mechanical reaction rate constants from centroid molecular dynamics simulations Available to Purchase
Eitan Geva;
Eitan Geva
Department of Chemistry, University of Michigan, Ann Arbor, Michigan 48109-1055
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Qiang Shi;
Qiang Shi
Department of Chemistry, University of Michigan, Ann Arbor, Michigan 48109-1055
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Gregory A. Voth
Gregory A. Voth
Department of Chemistry and Henry Eyring Center for Theoretical Chemistry, University of Utah, Salt Lake City, Utah 84112-0850
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Eitan Geva
Qiang Shi
Gregory A. Voth
Department of Chemistry, University of Michigan, Ann Arbor, Michigan 48109-1055
J. Chem. Phys. 115, 9209–9222 (2001)
Article history
Received:
July 17 2001
Accepted:
August 30 2001
Citation
Eitan Geva, Qiang Shi, Gregory A. Voth; Quantum-mechanical reaction rate constants from centroid molecular dynamics simulations. J. Chem. Phys. 22 November 2001; 115 (20): 9209–9222. https://doi.org/10.1063/1.1412870
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