Discussion of the separation of chemical and relaxational kinetics of chemically activated intermediates in master equation simulations
M Döntgen, K Leonhard - The Journal of Physical Chemistry A, 2017 - ACS Publications
The Journal of Physical Chemistry A, 2017•ACS Publications
Chemical activation of intermediates, such as hydrogen abstraction products, is emerging as
a basis for a fully new reaction type: hot β-scission. While for thermally equilibrated
intermediates chemical kinetics are typically orders of magnitude slower than relaxational
kinetics, chemically activated intermediates raise the issue of inseparable chemical and
relaxational kinetics. Here, this separation problem is discussed in the framework of master
equation simulations, proposing three cases often encountered in chemistry: insignificant …
a basis for a fully new reaction type: hot β-scission. While for thermally equilibrated
intermediates chemical kinetics are typically orders of magnitude slower than relaxational
kinetics, chemically activated intermediates raise the issue of inseparable chemical and
relaxational kinetics. Here, this separation problem is discussed in the framework of master
equation simulations, proposing three cases often encountered in chemistry: insignificant …
Chemical activation of intermediates, such as hydrogen abstraction products, is emerging as a basis for a fully new reaction type: hot β-scission. While for thermally equilibrated intermediates chemical kinetics are typically orders of magnitude slower than relaxational kinetics, chemically activated intermediates raise the issue of inseparable chemical and relaxational kinetics. Here, this separation problem is discussed in the framework of master equation simulations, proposing three cases often encountered in chemistry: insignificant chemical activation, predominant chemical activation, and the transition between these two limits. These three cases are illustrated via three example systems: methoxy (CH3Ȯ), diazenyl (ṄNH), and methyl formate radicals (CH3OĊO). For diazenyl, it is found that hot β-scission fully replaces the sequence of hydrogen abstraction and β-scission of thermally equilibrated diazenyl. Building on the example systems, a rule of thumb is proposed that can be used to intuitively judge the significance of hot β-scission: if the reverse hydrogen abstraction barrier height is comparable to or larger than the β-scission barrier height, hot β-scission should be considered in more detail.
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