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Title: Can quantum transition state theory be defined as an exact t = 0+ limit?

Journal Article · · Journal of Chemical Physics
DOI:https://doi.org/10.1063/1.4942482· OSTI ID:1469687
 [1];  [2]
  1. City Univ. of New York, Queens, NY (United States); City Univ. of New York, New York, NY (United States)
  2. Univ. of Chicago, Chicago, IL (United States)

The definition of the classical transition state theory (TST) as a t → 0+ limit of the flux-side time correlation function relies on the assumption that simultaneous measurement of population and flux is a well defined physical process. However, the noncommutativity of the two measurements in quantum mechanics makes the extension of such a concept to the quantum regime impossible. For this reason, quantum TST (QTST) has been generally accepted as any kind of quantum rate theory reproducing the TST in the classical limit, and there has been a broad consensus that no unique QTST retaining all the properties of TST can be defined. Contrary to this widely held view, Hele and Althorpe (HA) [J. Chem. Phys. 138, 084108 (2013)] recently suggested that a true QTST can be defined as the exact t → 0+ limit of a certain kind of quantum flux-side time correlation function and that it is equivalent to the ring polymer molecular dynamics (RPMD) TST. This work seeks to question and clarify certain assumptions underlying these suggestions and their implications. First, the time correlation function used by HA as a starting expression is not related to the kinetic rate constant by virtue of linear response theory, which is the first important step in relating a t = 0+ limit to a physically measurable rate. Second, a theoretical analysis calls into question a key step in HA’s proof which appears not to rely on an exact quantum mechanical identity. The correction of this makes the true t = 0+ limit of HA’s QTST different from the RPMD-TST rate expression, but rather equal to the well-known path integral quantum transition state theory rate expression for the case of centroid dividing surface. An alternative quantum rate expression is then formulated starting from the linear response theory and by applying a recently developed formalism of real time dynamics of imaginary time path integrals [S. Jang, A. V. Sinitskiy, and G. A. Voth, J. Chem. Phys. 140, 154103 (2014)]. It is shown that the t → 0+ limit of the new rate expression vanishes in the exact quantum limit.

Research Organization:
City Univ. of New York, New York, NY (United States)
Sponsoring Organization:
USDOE Office of Science (SC), Basic Energy Sciences (BES). Chemical Sciences, Geosciences & Biosciences Division; USDOE
Contributing Organization:
University of Chicago
Grant/Contract Number:
SC0001393
OSTI ID:
1469687
Alternate ID(s):
OSTI ID: 1239449; OSTI ID: 1755020
Report Number(s):
DOE-Queens-1393-16; JCPSA6
Journal Information:
Journal of Chemical Physics, Vol. 144, Issue 8; ISSN 0021-9606
Publisher:
American Institute of Physics (AIP)Copyright Statement
Country of Publication:
United States
Language:
English

References (31)

Can the ring polymer molecular dynamics method be interpreted as real time quantum dynamics? journal April 2014
Properties of Quantum Transition State Theory and Its Corrections journal January 1996
A relationship between centroid dynamics and path integral quantum transition state theory journal May 2000
Centroid‐density quantum rate theory: Variational optimization of the dividing surface journal June 1993
Quantum mechanical rate constants for bimolecular reactions journal November 1983
A nonseparable quantum mechanical transition state theory journal June 1981
Quantum Statistical Mechanical Theory of the Rate of Exchange Chemical Reactions in the Gas Phase journal July 1960
Derivation of a true ( t → 0 + ) quantum transition-state theory. I. Uniqueness and equivalence to ring-polymer molecular dynamics transition-state-theory journal February 2013
Statistical-Mechanical Theory of Irreversible Processes. II. Response to Thermal Disturbance journal November 1957
Quantum transition state theory journal August 1974
Derivation of a true ( t → 0 + ) quantum transition-state theory. II. Recovery of the exact quantum rate in the absence of recrossing journal August 2013
Consistent interpretations of quantum mechanics journal April 1992
A new formulation of quantum transition state theory for adiabatic rate constants journal October 1994
Quantum-Statistical Metastability journal February 1981
Rigorous formulation of quantum transition state theory and its dynamical corrections journal December 1989
Short-time behavior of quantum correlation functions in rate theory journal October 1981
Roles of classical dynamics and quantum dynamics on activated processes occurring in liquids journal January 1986
Time correlation function and path integral analysis of quantum rate constants journal September 1989
Reaction-rate theory: fifty years after Kramers journal April 1990
Generalized path integral based quantum transition state theory journal October 1997
Green’s functions in quantum transition state theory journal September 1991
Quantum-classical crossover of the transition rate in the damped double well journal August 1987
Feynman path integral formulation of quantum mechanical transition-state theory journal August 1993
Quantum activated rate theory: Variational optimization of planar dividing surfaces journal December 1993
Statistical-Mechanical Theory of Irreversible Processes. I. General Theory and Simple Applications to Magnetic and Conduction Problems journal June 1957
Chemical reaction rates from ring polymer molecular dynamics journal February 2005
Beyond transition-state theory: a rigorous quantum theory of chemical reaction rates journal April 1993
The symmetrized quantum thermal flux operator journal July 1997
A new quantum transition state theory journal February 1998
A unified framework for quantum activated rate processes. I. General theory journal October 1996
A refined ring polymer molecular dynamics theory of chemical reaction rates journal July 2005

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