Arrhenius curves of hydrogen transfers: tunnel effects, isotope effects and effects of pre-equilibria
Open Access
- 13 July 2006
- journal article
- research article
- Published by The Royal Society in Philosophical Transactions Of The Royal Society B-Biological Sciences
- Vol. 361 (1472) , 1399-1415
- https://doi.org/10.1098/rstb.2006.1872
Abstract
In this paper, the Arrhenius curves of selected hydrogen-transfer reactions for which kinetic data are available in a large temperature range are reviewed. The curves are discussed in terms of the one-dimensional Bell–Limbach tunnelling model. The main parameters of this model are the barrier heights of the isotopic reactions, barrier width of the H-reaction, tunnelling masses, pre-exponential factor and minimum energy for tunnelling to occur. The model allows one to compare different reactions in a simple way and prepare the kinetic data for more-dimensional treatments. The first type of reactions is concerned with reactions where the geometries of the reacting molecules are well established and the kinetic data of the isotopic reactions are available in a large temperature range. Here, it is possible to study the relation between kinetic isotope effects (KIEs) and chemical structure. Examples are the tautomerism of porphyrin, the porphyrin anion and related compounds exhibiting intramolecular hydrogen bonds of medium strength. We observe pre-exponential factors of the order of kT / h ≅10 13 s −1 corresponding to vanishing activation entropies in terms of transition state theory. This result is important for the second type of reactions discussed in this paper, referring mostly to liquid solutions. Here, the reacting molecular configurations may be involved in equilibria with non- or less-reactive forms. Several cases are discussed, where the less-reactive forms dominate at low or at high temperature, leading to unusual Arrhenius curves. These cases include examples from small molecule solution chemistry like the base-catalysed intramolecular H-transfer in diaryltriazene, 2-(2′-hydroxyphenyl)-benzoxazole, 2-hydroxy-phenoxyl radicals, as well as in the case of an enzymatic system, thermophilic alcohol dehydrogenase. In the latter case, temperature-dependent KIEs are interpreted in terms of a transition between two regimes with different temperature-independent KIEs.Keywords
This publication has 50 references indexed in Scilit:
- Internal Enzyme Motions as a Source of Catalytic Activity: Rate-Promoting Vibrations and Hydrogen TunnelingThe Journal of Physical Chemistry B, 2001
- Importance of Barrier Shape in Enzyme-catalyzed ReactionsPublished by Elsevier ,2001
- Hydrogen transfer in the porphin anion: A quantum dynamical study of vibrational effectsBerichte der Bunsengesellschaft für physikalische Chemie, 1998
- Kinetic H/D/T Isotope and Solid State Effects on the Tautomerism of the Conjugate Porphyrin MonoanionJournal of the American Chemical Society, 1996
- Observation of Kinetic Tritium Isotope Effects by Dynamic NMR. The Tautomerism of PorphyrinJournal of the American Chemical Society, 1996
- NMR Study of the Tautomerism of Porphyrin Including the Kinetic HH/HD/DD Isotope Effects in the Liquid and the Solid StateJournal of the American Chemical Society, 1994
- Keto-enol tautomerization of 2-(2'-hydroxyphenyl)benzoxazole and 2-(2'-hydroxy-4'-methylphenyl)benzoxazole in the triplet state: hydrogen tunneling and isotope effects. Transient absorption kineticsThe Journal of Physical Chemistry, 1991
- The Proton in ChemistryPublished by Springer Nature ,1973
- Statistical Mechanics of Isotopic Systems with Small Quantum Corrections. I. General Considerations and the Rule of the Geometric MeanThe Journal of Chemical Physics, 1955
- The Relative Reaction Velocities of Isotopic MoleculesThe Journal of Chemical Physics, 1949