Department of Isotope Biogeochemistry, Helmholtz Centre for Environmental Research-UFZ, Permoserstraße 15, 04318, Leipzig, Germany.
Department of Isotope Biogeochemistry, Helmholtz Centre for Environmental Research-UFZ, Permoserstraße 15, 04318, Leipzig, Germany; Department of Civil & Mineral Engineering, University of Toronto, 35 St George St, Toronto, ON M5S 1A4, Canada.
Chemosphere. 2022 Jun;296:133938. doi: 10.1016/j.chemosphere.2022.133938. Epub 2022 Feb 8.
The stable isotope fingerprints of hexachlorocyclohexane (HCH) isomers have potential for identifying sources as they are related to the synthesis processes and isotopic compositions of raw materials. However, the isotopic fractionation associated with the synthesis processes has not been investigated. Therefore, photochemical synthesis experiments using benzene and chlorine gas were conducted to characterize the associated isotopic fractionation under different conditions. Different patterns of isotopic fractionation factors (α, α, and α) were observed in each experiment. The large variability of α is related to the accumulating secondary hydrogen isotope effects or the rearrangement of C-H bonds at the cyclohexane ring. An increase of δC and δCl values of HCH isomers was observed during synthesis, which is related to the C-Cl bond formation in the radical dichlorination forming HCH and the subsequent chlorine substitution forming heptachlorocyclohexanes. The large variability of δH values is related to the secondary and primary hydrogen isotope effects. Different δC, δCl and δH values among HCH isomers were observed, indicating that conformational complexity of HCH caused by arrangement of C-Cl bonds in planar and axial positions also influence the isotope values. The understanding of isotopic fractionation during HCH synthesis can be indicative for source identification in the field.
六氯环己烷(HCH)异构体的稳定同位素指纹图谱具有识别来源的潜力,因为它们与原料的合成工艺和同位素组成有关。然而,与合成工艺相关的同位素分馏尚未得到研究。因此,进行了使用苯和氯气的光化学反应合成实验,以在不同条件下表征相关的同位素分馏。在每个实验中都观察到不同的同位素分馏因子(α1,α2 和 α3)模式。α1 的较大可变性与环己烷环上积累的二级氢同位素效应或 C-H 键的重排有关。在合成过程中观察到 HCH 异构体的 δC 和 δCl 值增加,这与 HCH 形成过程中环己烷自由基二氯化形成的 C-Cl 键以及随后的氯取代形成七氯环己烷有关。δH 值的较大可变性与二级和一级氢同位素效应有关。在 HCH 异构体之间观察到不同的 δC、δCl 和 δH 值,表明由于平面和轴向位置的 C-Cl 键排列引起的 HCH 的构象复杂性也会影响同位素值。对 HCH 合成过程中同位素分馏的理解可以为现场的来源识别提供指示。