S. Jang et Ga. Voth, A relationship between centroid dynamics and path integral quantum transition state theory, J CHEM PHYS, 112(20), 2000, pp. 8747-8757
The theory of Feynman path centroid dynamics is applied to the calculation
of quantum barrier crossing rates. The formulation starts from the exact de
finition of the quantum survival probability of the reactant state, and the
reaction rate is then defined as the steady-state limit of the decay rate
of the survival probability. A formulation is given in terms of exact centr
oid dynamics. Then, based on an approximation for the initial reactant stat
e and the centroid molecular dynamics (CMD) approximation for the dynamics,
a new approximate rate expression is obtained which is equal to the path i
ntegral quantum transition state theory (PI-QTST) expression multiplied by
a transmission factor of order unity. This factor varies with the choice of
the dividing surface in the low temperature limit, but it is invariant to
that choice at higher temperatures. It is then shown that the PI-QTST rate
expression results from the quadratic barrier approximation for the calcula
tion of the transmission factor only. The potential to use the new rate exp
ression as an improved version of the PI-QTST is also tested for model syst
ems. For certain choices of the dividing surface, it is shown that the new
reaction rate expression results in improvement over the PI-QTST results. T
he overall formulation also yields a better understanding of the barrier cr
ossing dynamics viewed from the centroid perspective and the rigorous origi
n of the PI-QTST formula. (C) 2000 American Institute of Physics. [S0021-96
06(00)50720-X].