Publication

Modelling of C/Cl isotopic behaviour during chloroethene biotic reductive dechlorination: Capabilities and limitations of simplified and comprehensive models

Résumé

Predicting the fate of chloroethenes in groundwater is essential when evaluating remediation strategies. Such predictions are expected to be more accurate when incorporating isotopic parameters. Although secondary chlorine isotope effects have been observed during reductive dechlorination of chloroethenes, development of modelling frameworks and simulation has thus far been limited. We have developed a novel mathematical framework to simulate the C/Cl isotopic fractionation during reductive dechlorination of chloroethenes. This framework differs from the existing state of the art by incorporating secondary isotopic effects and considering both C and Cl isotopes simultaneously. A comprehensive general model (GM), which is expected to be the closest representation of reality thus far investigated, was implemented. A less computationally intensive simplified model (SM), with the potential for use in modelling of complex reactive transport scenarios, was subsequently validated based on its comparison to GM. The approach of GM considers all isotopocules (i.e. molecules differing in number and position of heavy and light isotopes) of each chloroethene as individual species, of which each is degraded at a different rate. Both models GM and SM simulated plausible C/Cl isotopic compositions of tetrachloroethene (PCE), trichloroethene (TCE) and cis-1,2-dichloroethene (cDCE) during sequential dechlorination when using experimentally relevant kinetic and isotopic parameters. The only major difference occurred in the case where different secondary isotopic effects occur at the different non-reacting positions when PCE is dechlorinated down to cDCE. This observed discrepancy stems from the unequal Cl isotope distribution in TCE that arises due to the occurrence of differential secondary Cl isotopic effects during transformation of PCE to TCE. Additionally, these models are shown to accurately reproduce experimental data obtained during reductive dechlorination by bacterial enrichments harbouring Sulfurospirillum spp. where secondary isotope effects are known to have occurred. These findings underscore a promising future for the development of reactive transport models that incorporate isotopic parameters.

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Concepts associés (33)
Effet isotopique cinétique
L'effet isotopique cinétique (en anglais, kinetic isotope effect ou KIE) est la variation de la vitesse d'une réaction chimique lorsqu'un atome d'un des réactifs est remplacé par l'un de ses isotopes. Par exemple, le remplacement d'un atome C par un atome C conduit à un effet isotopique cinétique défini par le rapport des constantes de vitesse (on met en général au numérateur la constante qui concerne l'isotope le plus léger). Dans la substitution nucléophile du bromure de méthyle par l'ion cyanure, le rapport mesuré est de .
Traceur isotopique
Les traceurs isotopiques sont utilisés en chimie, en hydrochimie, en géologie isotopique et en biochimie afin de mieux comprendre certaines réactions chimiques, interactions ou la cinétique environnementale de certains éléments. Les processus biologiques, physiques et chimiques induisent en effet une répartition différentielle des isotopes légers et lourds, comportement appelé fractionnement isotopique. Le traçage isotopique utilise cette propriété des traceurs isotopiques.
Reference materials for stable isotope analysis
Isotopic reference materials are compounds (solids, liquids, gasses) with well-defined isotopic compositions and are the ultimate sources of accuracy in mass spectrometric measurements of isotope ratios. Isotopic references are used because mass spectrometers are highly fractionating. As a result, the isotopic ratio that the instrument measures can be very different from that in the sample's measurement. Moreover, the degree of instrument fractionation changes during measurement, often on a timescale shorter than the measurement's duration, and can depend on the characteristics of the sample itself.
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